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Archive / FAA Aeronautical Information Manual / FAA Aeronautical Information Manual: Chapter 1 — Chapter 1

FAA Aeronautical Information Manual: Chapter 1 — Chapter 1

FAA Aeronautical Information Manual: Chapter 1 — Chapter 1 — Part 1

AIM Basic with Changes 1, 2, and 3 (2026)

February 20, 2025

U.S. Department

of Transportation

Federal Aviation

Administration

Aeronautical

Information

Manual Official Guide to

Basic Flight Information and ATC Procedures

An electronic version of this publication is available online at

http://www.faa.gov/air_traffic/publications

AIM

Record of Changes

Change Number Change Filed Comments

2/20/25 AIM

Aeronautical Information Manual

Explanation of Changes

Effective: February 20, 2025

a. 3−5−5. PUBLISHED VFR ROUTES

9−1−4. GENERAL DESCRIPTION OF EACH CHART SERIES

This change updates the names to three visual flight rules (VFR) charted products published by Aeronautical

Information Services via the Terminal Area Chart (TAC) and VFR Flyway Planning Chart. These charts contain

the VFR Flyway and VFR Transition Routes developed where applicable due to traffic volume and airspace

complexity. The descriptions for each route are updated to better describe the products and the compliance

requirements for each. A new section covering the Helicopter Route Chart is added to include a description and

example of this charted VFR product.

b. 4−7−1. INTRODUCTION AND GENERAL POLICIES

This change removes subparagraph f that previously instructed pilots to use Strategic Lateral Offset Procedures

(SLOP) when flying in airspace over the Gulf of America. We have revised the general guidance on SLOP in

the U.S. AIP, ENR 7.1, accordingly.

c. 5−1−3. NOTICE TO AIR MISSIONS (NOTAM) SYSTEM

This change removes mention of Chart Update Bulletin and replaces it with a description and link to the AJV−A

website containing Safety Alerts, Charting Notices and Digital Product Notices.

d. 5−2−5. LINE UP AND WAIT (LUAW)

This change moves the cautionary statement “Line Up and Wait (LUAW) is not an authorization to takeoff” to

the first paragraph for emphasis. This change also adds a note advising readers of the increased number of

instances where pilots correctly read back LUAW instructions yet depart without a takeoff clearance. It reminds

pilots of the need for vigilance during LUAW operations. This change emphasizes situational awareness and

vigilance to subparagraphs respectively.

e. 5−4−5. INSTRUMENT APPROACH PROCEDURE (IAP) CHARTS

This change clarifies the “Fly Visual” guidance by adding the recommendation that the visual segment should

be flown with flight instrumentation when advisory lateral and vertical guidance is provided.

f. 5−4−7. INSTRUMENT APPROACH PROCEDURES

This change clarifies when the phraseology ”cleared approach” is issued without specifying which instrument

approach to fly, pilots are not authorized to fly a visual or contact approach. The change also clarifies guidance

instructing pilots what is expected when controllers clear IFR aircraft for a specific instrument approach.

g. Editorial Changes

Editorial changes include correcting an airport name change from Pensacola “Regional” to “International” in

Table 3−2−1, another change updates the hyperlink to the Graphical Forecasts for Aviation (GFA) static images

website in paragraph 7−1−4, and updates the graphics used in FIG 7−1−2 and FIG 7−1−3. Finally, the CFR “part”

and “section” references are lower−cased throughout, to make consistent with usage across publications.

h. Entire Publication

Additional editorial/format changes were made where necessary. Revision bars were not used because of the

insignificant nature of these changes.

Explanation of Changes E of Chg−1

U.S. Department

of Transportation

Federal Aviation

Administration

AERONAUTICAL

INFORMATION

MANUAL

Change 1

August 7, 2025

DO NOT DESTROY

BASIC DATED

February 20, 2025

8/7/25 AIM

Aeronautical Information Manual

Explanation of Changes

Effective: August 7, 2025

a. 2−3−10. DIRECTION SIGNS

2−3−11. DESTINATION SIGNS

This change revises paragraph 2 −3−11, Destination Signs. This change coincides with an update of AC

150/5340−18 thus establishing an authorized source that supports FAA adding standardized chart labels for

parking areas to airport diagrams. The rewrite of paragraph 2−3−11 separates content for inbound destination

signs from content for outbound destination. This DCP also revises and recaptions FIG 2−3−38 to depict more

examples of inbound destination sign legends, and recaptions FIG 2−3−39 to reflect an outbound destination sign

example, and moves them to paragraph 2−3−11.

b. 4−3−3. AIRPORTS WITH AN OPERATING CONTROL TOWER

This change realigns the AIM definition and graphic depiction of upwind leg at towered airports with current

ATC use and expectation. ATC usage of upwind leg is an extension of departure. The AIM’s current definition

of upwind has led to confusion among pilots and controllers. The new proposed graphic depiction of upwind in

FIG 4−3−1 as well as the definition in 4−3−2c aligns with common usage at towered airports. Additionally, the

order of traffic pattern component definitions was reconfigured to align their definitions in a more logical

sequence beginning with departure.

c. 5–2–9. INSTRUMENT DEPARTURE PROCEDURES (DP) − OBSTACLE DEPARTURE

PROCEDURES (ODP), STANDARD INSTRUMENT DEPARTURES (SID), AND DIVERSE VECTOR

AREAS (DV A)

This change incorporates changes to instrument departure criteria for minimums and obstacle notes. Language

is added to identify the changes to departure charts and pilot/controller responsibilities.

d. 5–4–5. INSTRUMENT APPROACH PROCEDURE (IAP) CHARTS

This change updates information regarding instrument approach altimeter setting sources to include references

to airport identifiers.

e. 5–4–6. APPROACH CLEARANCE

5–4–7. INSTRUMENT APPROACH PROCEDURES

This change realigns cleared approach procedures, which was inadvertently added to paragraph 5 −4−7, to

paragraph 5−4−6. It also addresses arrival to approach connectivity procedures to assure pilots recognize and

implement the connection of arrivals (STARs) with an instrument approach procedure at the initial approach fix

where they exist.

f. 5–4–13. SIMULTANEOUS APPROACHES TO PARALLEL RUNWAYS

This change addresses curved and angled paths that may be used to intercept the final approach course and

emphasizes the importance of adhering to the approach procedure. Also, a correction is being made to the figure

that corresponds to the textual description.

g. 5−4−22. USE OF ENHANCED FLIGHT VISI ON SYSTEMS (EFVS) ON INSTRUMENT

APROACHES

This updates the EFVS section of the AIM to note this change, as well as, to call attention to the AFS 410 EFVS

website where each LED ALS is noted by runway end.

Explanation of Changes E of Chg−1

AIM 8/7/25

h. 7–1–1. NATIONAL WEATHER SERVICE A VIATION WEATHER SERVICE PROGRAM

7–1–3. USE OF A VIATION WEATHER PRODUCTS

7–1–9. FLIGHT INFORMATION SERVICES (FIS)

This change removes references to Advisory Circular 00 −45, Aviation Weather Services, and replaces with

FAA−H−8083−28, Aviation Weather Handbook. Making these changes will correct the AIM and bring it in

alignment with other FAA documents and publications.

i. 7–1–7. CATEGORICAL OUTLOOKS

This change amends the paragraph to include reported weather data as to how the categorical ceiling and visibility terms

are used.

j. 7–2–3. ALTIMETER ERRORS

This change assigns the waiver authority for 14 CFR § 91.144 to Air Traffic Organization (ATO) Service Center

Directors in their areas of jurisdiction, since AFS waiver procedures were incompatible with the short life of a

high barometric pressure NOTAM.

k. 7–6–18. AUTOMATIC LANDING OPERATIONS

This change adds guidance advising operators conducting automatic landing operations to first determine that

the flight control guidance system being used is compatible with the instrument approach procedure and runway

being used.

l. 9–1–3. SAFETY ALERTS, CHARTING NOTICES AND DATA PRODUCT NOTICES

This change adds descriptions of FAA published Safety Alerts (SA), Charting Notices (CN), and Data Product

Notices (DPN), and provides a hyperlink to the FAA website containing these notices.

m. Editorial Changes

Editorial changes include relocating some subparagraphs in paragraph 5–3–1 to match the corresponding

formatting in the Aeronautical Information Publication (AIP); correcting the title of paragraph 7–6–1 to

Accident Causal Factors; a universal change replacing all prior references to the term Gulf of America with

the term Gulf of America in accordance with Executive Order 14172; and a universal change updating the

term Notice to Air Missions (NOTAM) to Notice to Airmen (NOTAM).

n. Entire Publication

Additional editorial/format changes were made where necessary. Revision bars were not used because of the

insignificant nature of these changes.

E of Chg−2 Explanation of Changes

8/7/25 AIM

AIM Change 1

Page Control Chart

August 7, 2025

REMOVE PAGES DATED INSERT PAGES DATED

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AIM 3/21/24

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Page Control Chart ii

8/7/25 AIM

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Appendix 4−11 and Appendix 4−1 2 ....... 2/20/25 Appendix 4−11 and Appendix 4−1 2 ....... 8/7/25

Index I−1 through Index 1−1 3 ............ 2/20/25 Index I−1 through I−1 3 ................. 8/7/25

Page Control Chart iii

8/7/25 AIM

Checklist of Pages

PAGE DATE

Cover 8/7/25

Record of Changes 8/7/25

E of Chg−1 8/7/25

E of Chg−2 8/7/25

Checklist of Pages

CK−1 8/7/25

CK−2 8/7/25

CK−3 8/7/25

CK−4 8/7/25

CK−5 8/7/25

CK−6 8/7/25

CK−7 8/7/25

CK−8 8/7/25

Subscription Info 2/20/25

Comments/Corr 2/20/25

Basic Flight Info 2/20/25

Publication Policy 2/20/25

Reg & Advis Cir 2/20/25

Table of Contents

i 8/7/25

ii 8/7/25

iii 8/7/25

iv 8/7/25

v 8/7/25

vi 8/7/25

vii 8/7/25

viii 8/7/25

ix 8/7/25

x 8/7/25

xi 8/7/25

xii 8/7/25

xiii 8/7/25

Chapter 1. Air Navigation

Section 1. Navigation Aids

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Section 2. Performance−Based

Navigation (PBN) and Area

Navigation (RNA V)

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Chapter 2. Aeronautical

Lighting and Other Airport

Visual Aids

Section 1. Airport Lighting

Aids

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Section 2. Air Navigation and

Obstruction Lighting

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Section 3. Airport Marking

Aids and Signs

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Checklist of Pages CK−1

AIM 8/7/25

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Chapter 3. Airspace

Section 1. General

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Section 2. Controlled Airspace

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Section 3. Class G Airspace

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Section 4. Special Use Airspace

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Section 5. Other Airspace

Areas

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Chapter 4. Air Traffic Control

Section 1. Services Available to

Pilots

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Section 2. Radio

Communications Phraseology

and Techniques

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Section 3. Airport Operations

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4−3−33 2/20/25

4−3−34 2/20/25

4−3−35 2/20/25

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4−3−37 2/20/25

Section 4. ATC Clearances and

Aircraft Separation

4−4−1 2/20/25

4−4−2 2/20/25

4−4−3 2/20/25

4−4−4 2/20/25

4−4−5 2/20/25

4−4−6 2/20/25

4−4−7 2/20/25

4−4−8 2/20/25

CK−2 Checklist of Pages

8/7/25 AIM

Checklist of Pages

PAGE DATE

4−4−9 2/20/25

4−4−10 2/20/25

4−4−11 2/20/25

4−4−12 2/20/25

4−4−13 2/20/25

4−4−14 2/20/25

Section 5. Surveillance

Systems

4−5−1 2/20/25

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4−5−3 2/20/25

4−5−4 2/20/25

4−5−5 2/20/25

4−5−6 2/20/25

4−5−7 2/20/25

4−5−8 2/20/25

4−5−9 2/20/25

4−5−10 2/20/25

4−5−11 2/20/25

4−5−12 2/20/25

4−5−13 2/20/25

4−5−14 2/20/25

4−5−15 2/20/25

4−5−16 2/20/25

4−5−17 2/20/25

4−5−18 8/7/25

4−5−19 2/20/25

4−5−20 2/20/25

4−5−21 2/20/25

Section 6. Operational Policy/

Procedures for Reduced Vertical

Separation Minimum (RVSM) in

the Domestic U.S., Alaska,

Offshore Airspace and the San

Juan FIR

4−6−1 8/7/25

4−6−2 2/20/25

4−6−3 2/20/25

4−6−4 2/20/25

4−6−5 2/20/25

4−6−6 2/20/25

4−6−7 2/20/25

4−6−8 2/20/25

4−6−9 2/20/25

4−6−10 2/20/25

PAGE DATE

Section 7. Operational Policy/

Procedures for the Gulf of

America 50 NM Lateral

Separation Initiative

4−7−1 8/7/25

4−7−2 8/7/25

Chapter 5. Air Traffic

Procedures

Section 1. Preflight

5−1−1 8/7/25

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5−1−4 2/20/25

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5−1−8 2/20/25

5−1−9 2/20/25

5−1−10 2/20/25

5−1−11 2/20/25

5−1−12 2/20/25

5−1−13 2/20/25

5−1−14 2/20/25

5−1−15 2/20/25

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5−1−17 2/20/25

5−1−18 2/20/25

5−1−19 2/20/25

5−1−20 2/20/25

5−1−21 2/20/25

Section 2. Departure

Procedures

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5−2−14 8/7/25

5−2−15 8/7/25

PAGE DATE

5−2−16 8/7/25

5−2−17 8/7/25

Section 3. En Route

Procedures

5−3−1 8/7/25

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5−3−3 2/20/25

5−3−4 2/20/25

5−3−5 2/20/25

5−3−6 2/20/25

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5−3−8 2/20/25

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5−3−15 8/7/25

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5−3−17 8/7/25

5−3−18 8/7/25

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5−3−25 2/20/25

5−3−26 2/20/25

5−3−27 2/20/25

5−3−28 2/20/25

5−3−29 2/20/25

5−3−30 2/20/25

Section 4. Arrival Procedures

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5−4−2 2/20/25

5−4−3 2/20/25

5−4−4 2/20/25

5−4−5 2/20/25

5−4−6 2/20/25

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5−4−8 8/7/25

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5−4−10 2/20/25

5−4−11 2/20/25

5−4−12 2/20/25

5−4−13 2/20/25

5−4−14 2/20/25

Checklist of Pages CK−3

15

20

25

30

35

40

45

50

55

60

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PAGE DATE

5−4− 2/20/25

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5−4−18 2/20/25

5−4−19 2/20/25

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5−4−23 2/20/25

5−4−24 2/20/25

5−4− 2/20/25

5−4−26 2/20/25

5−4−27 2/20/25

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5−4−29 8/7/25

5−4− 8/7/25

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5−4−65 8/7/25

5−4−66 8/7/25

5−4−67 8/7/25

5−4−68 8/7/25

Section 5. Pilot/Controller

Roles and Responsibilities

5−5−1 8/7/25

5−5−2 2/20/25

5−5−3 2/20/25

5−5−4 2/20/25

5−5−5 2/20/25

5−5−6 2/20/25

5−5−7 2/20/25

5−5−8 2/20/25

5−5−9 2/20/25

5−5−10 2/20/25

Section 6. National Security

and Interception Procedures

5−6−1 2/20/25

5−6−2 2/20/25

5−6−3 2/20/25

5−6−4 2/20/25

5−6−5 2/20/25

5−6−6 2/20/25

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5−6−8 2/20/25

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5−6−10 2/20/25

5−6−11 2/20/25

5−6−12 2/20/25

5−6−13 2/20/25

5−6−14 2/20/25

5−6−15 2/20/25

Chapter 6. Emergency

Procedures

Section 1. General

6−1−1 2/20/25

Section 2. Emergency Services

Available to Pilots

6−2−1 2/20/25

6−2−2 2/20/25

6−2−3 2/20/25

6−2−4 2/20/25

6−2−5 2/20/25

6−2−6 2/20/25

PAGE DATE

6−2−7 2/20/25

6−2−8 2/20/25

6−2−9 2/20/25

6−2−10 2/20/25

6−2−11 2/20/25

6−2−12 2/20/25

6−2−13 2/20/25

6−2−14 2/20/25

6−2−15 2/20/25

6−2−16 2/20/25

Section 3. Distress and

Urgency Procedures

6−3−1 2/20/25

6−3−2 2/20/25

6−3−3 2/20/25

6−3−4 2/20/25

6−3−5 2/20/25

6−3−6 2/20/25

6−3−7 2/20/25

6−3−8 2/20/25

Section 4. Two−way Radio

Communications Failure

6−4−1 2/20/25

6−4−2 2/20/25

6−4−3 2/20/25

Section 5. Aircraft Rescue and

Fire Fighting Communications

6−5−1 2/20/25

6−5−2 2/20/25

Chapter 7. Safety of Flight

Section 1. Meteorology

7−1−1 2/20/25

7−1−2 8/7/25

7−1−3 2/20/25

7−1−4 2/20/25

7−1−5 2/20/25

7−1−6 8/7/25

7−1−7 2/20/25

7−1−8 2/20/25

7−1−9 2/20/25

7−1−10 8/7/25

7−1−11 8/7/25

7−1−12 2/20/25

7−1−13 2/20/25

CK−4 Checklist of Pages

15

20

25

30

35

40

45

50

55

60

8/7/25 AIM

Checklist of Pages

PAGE DATE

7−1−14 2/20/25

7−1− 2/20/25

7−1−16 8/7/25

7−1−17 2/20/25

7−1−18 2/20/25

7−1−19 2/20/25

7−1− 2/20/25

7−1−21 2/20/25

7−1−22 8/7/25

7−1−23 2/20/25

7−1−24 2/20/25

7−1− 8/7/25

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7−1−28 2/20/25

7−1−29 2/20/25

7−1− 2/20/25

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7−1− 2/20/25

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7−1−39 2/20/25

7−1− 2/20/25

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7−1−44 2/20/25

7−1− 2/20/25

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7−1−49 2/20/25

7−1− 2/20/25

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7−1−54 2/20/25

7−1− 2/20/25

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7−1−59 2/20/25

7−1− 2/20/25

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PAGE DATE

7−1−64 2/20/25

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7−1−74 2/20/25

7−1−75 2/20/25

7−1−76 2/20/25

7−1−77 2/20/25

7−1−78 2/20/25

Section 2. Barometric

Altimeter Errors and Setting

Procedures

7−2−1 2/20/25

7−2−2 2/20/25

7−2−3 8/7/25

Section 3. Cold Temperature

Barometric Altimeter Errors,

Setting Procedures and Cold

Temperature Airports (CTA)

7−3−1 2/20/25

7−3−2 2/20/25

7−3−3 2/20/25

7−3−4 2/20/25

7−3−5 2/20/25

7−3−6 2/20/25

7−3−7 2/20/25

7−3−8 2/20/25

Section 4. Wake Turbulence

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7−4−3 2/20/25

7−4−4 2/20/25

7−4−5 2/20/25

7−4−6 2/20/25

7−4−7 2/20/25

7−4−8 2/20/25

7−4−9 2/20/25

Section 5. Bird Hazards and

Flight Over National Refuges,

Parks, and Forests

7−5−1 2/20/25

PAGE DATE

7−5−2 2/20/25

Section 6. Potential Flight

Hazards

7−6−1 8/7/25

7−6−2 2/20/25

7−6−3 8/7/25

7−6−4 2/20/25

7−6−5 2/20/25

7−6−6 2/20/25

7−6−7 2/20/25

7−6−8 2/20/25

7−6−9 2/20/25

7−6−10 2/20/25

7−6−11 2/20/25

7−6−12 2/20/25

7−6−13 8/7/25

7−6−14 2/20/25

7−6−15 2/20/25

7−6−16 2/20/25

7−6−17 2/20/25

7−6−18 8/7/25

Section 7. Safety, Accident,

and Hazard Reports

7−7−1 2/20/25

7−7−2 2/20/25

7−7−3 2/20/25

7−7−4 2/20/25

Chapter 8. Medical Facts for

Pilots

Section 1. Fitness for Flight

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8−1−2 2/20/25

8−1−3 2/20/25

8−1−4 2/20/25

8−1−5 2/20/25

8−1−6 2/20/25

8−1−7 2/20/25

8−1−8 2/20/25

8−1−9 2/20/25

8−1−10 2/20/25

Chapter 9. Aeronautical

Charts and Related

Publications

Section 1. Types of Charts

Available

Checklist of Pages CK−5

AIM 8/7/25

Checklist of Pages

PAGE DATE

9−1−1 8/7/25

9−1−2 8/7/25

9−1−3 8/7/25

9−1−4 8/7/25

9−1−5 8/7/25

9−1−6 8/7/25

9−1−7 8/7/25

9−1−8 8/7/25

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9−1−11 8/7/25

9−1−12 8/7/25

9−1−13 8/7/25

9−1−14 8/7/25

9−1−15 8/7/25

Chapter 10. Helicopter

Operations

Section 1. Helicopter IFR

Operations

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10−1−4 2/20/25

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10−1−6 8/7/25

10−1−7 8/7/25

10−1−8 2/20/25

Section 2. Special Operations

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10−2−3 8/7/25

10−2−4 2/20/25

10−2−5 2/20/25

10−2−6 2/20/25

10−2−7 2/20/25

10−2−8 2/20/25

10−2−9 2/20/25

10−2−10 2/20/25

10−2−11 2/20/25

10−2−12 2/20/25

10−2−13 2/20/25

10−2−14 2/20/25

10−2−15 2/20/25

10−2−16 2/20/25

10−2−17 2/20/25

10−2−18 2/20/25

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10−2−20 2/20/25

PAGE DATE

Chapter 11. Unmanned

Aircraft Systems (UAS)

Section 1. General

11−1−1 2/20/25

11−1−2 2/20/25

Section 2. Small Unmanned

Aircraft System (sUAS)

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11−2−2 2/20/25

11−2−3 2/20/25

Section 3. Large UAS

(MGOW 55 Pounds or More)

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11−3−3 2/20/25

11−3−4 2/20/25

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Section 4. Airspace Access for

UAS

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11−4−9 2/20/25

Section 5. UAS Pilot Testing,

Certification and

Responsibilities

PAGE DATE

11−5−1 2/20/25

11−5−2 2/20/25

11−5−3 2/20/25

Section 6. Advanced Air

Mobility

11−6−1 2/20/25

Section 7. UAS Operations on

Airports

11−7−1 2/20/25

PAGE DATE

Section 8. Other Information

and Best Practices

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11−8−2 2/20/25

11−8−3 2/20/25

11−8−4 8/7/25

Appendices

Appendix 1−1 2/20/25

Env N/A

Appendix 2−1 2/20/25

Appendix 3−1 2/20/25

Appendix 3−2 2/20/25

Appendix 3−3 2/20/25

Appendix 3−4 2/20/25

Appendix 3−5 2/20/25

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Appendix 4−3 2/20/25

Appendix 4−4 2/20/25

Appendix 4−5 2/20/25

Appendix 4−6 2/20/25

Appendix 4−7 2/20/25

Appendix 4−8 2/20/25

Appendix 4−9 2/20/25

Appendix 4−10 2/20/25

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Appendix 4−13 2/20/25

Appendix 4−14 2/20/25

Appendix 4−15 2/20/25

Appendix 4−16 2/20/25

Appendix 4−17 2/20/25

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Appendix 4−19 2/20/25

Appendix 4−20 2/20/25

Appendix 4−21 2/20/25

Appendix 4−22 2/20/25

Appendix 4−23 2/20/25

Appendix 5−1 2/20/25

Appendix 5−2 2/20/25

Appendix 5−3 2/20/25

CK−6 Checklist of Pages

8/7/25 AIM

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P/CG

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PCG R−11 2/20/25

PCG S−1 2/20/25

PCG S−2 2/20/25

PCG S−3 2/20/25

PCG S−4 2/20/25

PCG S−5 2/20/25

PCG S−6 2/20/25

PCG S−7 2/20/25

PCG S−8 2/20/25

PCG S−9 2/20/25

PCG S−10 2/20/25

PCG S−11 2/20/25

PCG S−12 2/20/25

PCG T−1 2/20/25

PCG T−2 2/20/25

PCG T−3 2/20/25

PCG T−4 2/20/25

PCG T−5 2/20/25

PCG T−6 2/20/25

PCG T−7 2/20/25

PCG T−8 2/20/25

PCG T−9 2/20/25

PCG T−10 2/20/25

PCG T−11 2/20/25

PCG T−12 2/20/25

PCG U−1 2/20/25

PCG U−2 2/20/25

PCG V−1 2/20/25

PCG V−2 2/20/25

PCG V−3 2/20/25

PCG V−4 2/20/25

PCG V−5 2/20/25

PCG W−1 2/20/25

PCG W−2 2/20/25

Index

I−1 8/7/25

I−2 8/7/25

I−3 8/7/25

I−4 8/7/25

I−5 8/7/25

I−6 8/7/25

Checklist of Pages CK−7

AIM 8/7/25

Checklist of Pages

PAGE DATE

I−7 8/7/25

I−8 8/7/25

I−9 8/7/25

I−10 8/7/25

I−11 8/7/25

I−12 8/7/25

I−13 8/7/25

Back Cover N/A

CK−8 Checklist of Pages

U.S. Department

of Transportation

Federal Aviation

Administration

AERONAUTICAL

INFORMATION

MANUAL

Change 2

January 22, 2026

DO NOT DESTROY

BASIC DATED

February 20, 2025

1/22/26 AIM

Aeronautical Information Manual

Explanation of Changes

Effective: January 22, 2026

a. 3−5−5. PUBLISHED VFR ROUTES

This change adds a link to the VFR Helicopter route website.

b. 4−1−21. AIRPORT RESERV ATION OPERATIONS AND SPECIAL TRAFFIC MANAGEMENT

PROGRAMS

This change adds guidance regarding Prior Permission Required (PPR) when conditions exist that may affect

operations at an airport.

c. 4−7−1. INTRODUCTION AND GENERAL POLICIES

4-7-2. ACCOMODATING NON-RNP 10 AIRCRAFT

4-7-5. FLIGHT PLAN REQUIREMENTS

Editorial changes were made to update Flight Information Region/Upper Control Area (FIR/UTA) and Control

Area (CTA), to CTA/FIR.

d. 5−1−1. PREFLIGHT PREPARATION

7−1−2. FAA WEATHER SERVICES

This change adds a new contact telephone number for flight service stations in Alaska: 1−833−AK−BRIEF.

e. 5–3−1. ARTCC COMMUNICATIONS

This change adds new uplink and downlink messages sets in Chapter 5 of the AIM.

f. 5−3−1. ARTCC COMMUNICATIONS

APPENDIX 3. ABBREVIATIONS/ACRONYMS

This change updates references to “Initial Services” in the body of the paragraph and updates the message set

tables to reflect the currently available CPDLC messages in the domestic operation. TBL 5–3–1 through 5–3–19

was added to and updated to extend to TBL 5–3–23. New abbreviations were added to Appendix 3.

g. 5−4−14. SIMULTANEOUS DEPENDENT APPROACHES

5−4−16. SIMULTANEOUS CLOSE PARALLEL PRM APPROACHES AND SIMULTANEOUS

OFFSET INSTRUMENT APPROACHES (SOIA)

This change removes erroneous notes stating KSFO uses SOIA procedures.

h. 5−4−20. APPROACH AND LANDING MINIMUMS

This change clarifies pilot guidance to reinforce compliance with 14 CFR 91.126, consistent with Office of Chief

Counsel interpretations.

i. 7−4−9. AIR TRAFFIC WAKE TURBULENCE SEPARATIONS

7−4−10. DEVELOPMENT AND NEW CAPABILITIES

This change aligns the Aeronautical Information Manual (AIM) with the FAA effort to recategorize the existing

fleet of aircraft and modify the associated wake turbulence separation minima. All prior references to Wake

RECAT are removed due to this effort.

j. 7−7−4. UNIDENTIFIED FLYING OBJECT (UFO) REPORTS

This change retitles 7−7−4 to “Unidentified Anomalous Phenomena (UAP) Reports,” deletes the reference to

non−governmental UFO data collection entities, and adds a link to the AARO website for reporting UAP activity.

Explanation of Changes E of Chg−1

AIM 1/22/26

k. 11−4−6. AIRSPACE RESTRICTIONS TO FLIGHT

This change updates and clarifies the proper balance between state, local and federal (FAA) jurisdiction to

regulate aviation. This change also clarifies information related to Temporary Flight Restrictions (TFRs) and

provides updated language regarding “No Drone Zones.”

l. Editorial Changes

Editorial changes include several minor corrections throughout Chapter 7, Section 6; the addition of the word

“known” when describing identifying obstacles associated with the Digital Obstacle File (DOF) in paragraph

9−1−4; a universal editorial change to ensure FAA Order JO 7340.2 references are accurate; a universal editorial

change to update terms from the National Aeronautical Charting office to FAA’s Aeronautical Information

Services (AIS) and updating National Flight Data Center (NFDC) for its replacement AIS, the term AeroNav

Products is removed for the term AIS; and a correction to verbiage in paragraph 1−1−17.

m. Entire Publication

Additional editorial/format changes were made where necessary. Revision bars were not used because of the

insignificant nature of these changes.

E of Chg−2 Explanation of Changes

1/22/26 AIM

AIM Change 2

Page Control Chart

January 22, 2026

REMOVE PAGES DATED INSERT PAGES DATED

Checklist of Pages CK−1 through CK−8 .... 8/7/25 Checklist of Pages CK−1 through CK−8 .... 1/22/26

Table of Contents i through xiii ........... 8/7/25 Table of Contents i through xiii ........... 1/22/26

1−1−2 3 .............................. 2/20/25 1−1−2 3 .............................. 2/20/25

1−1−2 4 .............................. 2/20/25 1−1−2 4 .............................. 1/22/26

1−1−2 5 .............................. 8/7/25 1−1−2 5 .............................. 2/20/25

1−1−26 through 1−1−3 3 ................. 8/7/25 1−1−26 through 1−1−3 3 ................. 1/22/26

1−1−3 4 .............................. 2/20/25 1−1−3 4 .............................. 2/20/25

1−1−4 1 .............................. 3/21/24 1−1−4 1 .............................. 1/22/26

3−5−7 ............................... 8/7/25 3−5−7 ............................... 8/7/25

3−5−8 ............................... 2/20/25 3−5−8 ............................... 1/22/26

4−1−2 1 .............................. 2/20/25 4−1−2 1 .............................. 2/20/25

4−1−22 and 4−1−2 3 .................... 2/20/25 4−1−22 and 4−1−2 3 .................... 1/22/26

4−7−1 and 4−7−2 ...................... 8/7/25 4−7−1 and 4−7−2 ...................... 1/22/26

5−1−1 and 5−1−2 ...................... 8/7/25 5−1−1 and 5−1−2 ...................... 1/22/26

5−3−1 and 5−3−2 ...................... 8/7/25 5−3−1 and 5−3−2 ...................... 1/22/26

5−3−3 through 5−3−1 1 .................. 2/20/25 5−3−3 through 5−3−1 1 .................. 1/22/26

5−3−12 through 5−3−2 1 ................. 8/7/25 5−3−12 through 5−3−2 1 ................. 1/22/26

5−3−22 through 5−3−3 4 ................. 2/20/25 5−3−22 through 5−3−3 4 ................. 1/22/26

5−4−3 ............................... 2/20/25 5−4−3 ............................... 1/22/26

5−4−4 ............................... 2/20/25 5−4−4 ............................... 2/20/25

5−4−4 3 .............................. 2/20/25 5−4−4 3 .............................. 1/22/26

5−4−4 4 .............................. 2/20/25 5−4−4 4 .............................. 2/20/25

5−4−5 1 .............................. 2/20/25 5−4−5 1 .............................. 2/20/25

5−4−52 through 5−4−6 2 ................. 2/20/25 5−4−52 through 5−4−6 2 ................. 1/22/26

7−1−1 ............................... 2/20/25 7−1−1 ............................... 2/20/25

7−1−2 ............................... 8/7/25 7−1−2 ............................... 1/22/26

7−1−3 through 7−1−5 ................... 2/20/25 7−1−3 through 7−1−5 ................... 1/22/26

7−1−6 ............................... 8/7/25 7−1−6 ............................... 8/7/25

7−4−7 ............................... 2/20/25 7−4−7 ............................... 2/20/25

7−4−8 and 7−4−9 ...................... 2/20/25 7−4−8 and 7−4−9 ...................... 1/22/26

7−6−3 ............................... 8/7/25 7−6−3 ............................... 1/22/26

7−6−4 ............................... 2/20/25 7−6−4 ............................... 1/22/26

7−6−9 and 7−6−1 0 ..................... 2/20/25 7−6−9 and 7−6−1 0 ..................... 1/22/26

7−6−1 1 .............................. 2/20/25 7−6−1 1 .............................. 2/20/25

7−6−1 2 .............................. 2/20/25 7−6−1 2 .............................. 1/22/26

7−6−1 3 .............................. 8/7/25 7−6−1 3 .............................. 1/22/26

7−6−14 and 7−6−1 5 .................... 2/20/25 7−6−14 and 7−6−1 5 .................... 1/22/26

7−6−1 6 .............................. 2/20/25 7−6−1 6 .............................. 2/20/25

7−7−3 and 7−7−4 ...................... 2/20/25 7−7−3 and 7−7−4 ...................... 1/22/26

9−1−9 ............................... 8/7/25 9−1−9 ............................... 1/22/26

Page Control Chart i

AIM 1/22/26

9−1−10 and 9−1−1 1 .................... 8/7/25 9−1−10 and 9−1−1 1 .................... 8/7/25

9−1−1 2 .............................. 8/7/25 9−1−1 2 .............................. 1/22/26

11−4−5 .............................. 2/20/25 11−4−5 .............................. 2/20/25

11−4−6 through 11−4−8 ................. 2/20/25 11−4−6 through 11−4−8 ................. 1/22/26

Appendix 3−1 through Appendix 3−5 ...... 2/20/25 Appendix 3−1 through Appendix 3−5 ...... 1/22/26

Appendix 4−1 7........................ 2/20/25 Appendix 4−1 7........................ 1/22/26

Appendix 4−1 8........................ 2/20/25 Appendix 4−1 8........................ 2/20/25

Appendix 4−1 9........................ 2/20/25 Appendix 4−1 9........................ 1/22/26

Appendix 4−2 0........................ 2/20/25 Appendix 4−2 0........................ 2/20/25

Index I−1 through Index I−1 2 ............ 8/7/25 Index I−1 through I−1 2 ................. 1/22/26

PCG−1 and PCG−2 .................... 8/7/25 PCG−1 .............................. 1/22/26

PCG A−7 ............................ 8/7/25 PCG A−7 ............................ 8/7/25

PCG A−8 through PCG A−1 9 ............ 8/7/25 PCG A−8 through PCG A−1 9 ............ 1/22/26

PCG A−20 and PCG A−21 2/20/25 PCG A−20 and PCG A−21 1/22/26

PCG C−7 ............................ 2/20/25 PCG C−7 ............................ 2/20/25

PCG C−8 ............................ 2/20/25 PCG C−8 ............................ 1/22/26

PCG D−1 through PCG D−5 ............. 2/20/25 PCG D−1 through PCG D−5 ............. 1/22/26

PCG E−1 through PCG E−3.............. 2/20/25 PCG E−1 through PCG E−3.............. 1/22/26

PCG N−1 ............................ 8/7/25 PCG N−1 ............................ 1/22/26

PCG N−2 ............................ 8/7/25 PCG N−2 ............................ 8/7/25

PCG P−1............................. 2/20/25 PCG P−1............................. 2/20/25

PCG P−2............................. 2/20/25 PCG P−2............................. 1/22/26

PCG P−3 through PCG P−6 .............. 8/7/25 PCG P−3 through PCG P−6 .............. 1/22/26

PCG T−3 through PCG T−7.............. 2/20/25 PCG T−3 through PCG T−7.............. 1/22/26

PCG T−8 ............................ 2/20/25 PCG T−8 ............................ 2/20/25

PCG T−9 ............................ 8/7/25 PCG T−9 ............................ 8/7/25

PCG T−10 and PCG T−1 1 ............... 8/7/25 PCG T−10 and PCG T−1 1 ............... 1/22/26

PCG T−1 2 ........................... 8/7/25 PCG T−1 2 ........................... 8/7/25

PCG U−1 and PCG U−2 ................ 2/20/25 PCG U−1 and PCG U−2 ................ 1/22/26

PCG W−1............................ 8/7/25 PCG W−1............................ 1/22/26

PCG W−2............................ 2/20/25 PCG W−2............................ 2/20/25

Index I−1 through Index I−1 3 ............ 2/20/25 Index I−1 through Index I−1 3 ............ 1/22/26

Page Control Chart ii

1/22/26 AIM

Checklist of Pages

PAGE DATE

Cover 1/22/26

Record of Changes N/A

E of Chg−1 1/22/26

E of Chg−2 1/22/26

Checklist of Pages

CK−1 1/22/26

CK−2 1/22/26

CK−3 1/22/26

CK−4 1/22/26

CK−5 1/22/26

CK−6 1/22/26

CK−7 1/22/26

CK−8 1/22/26

Subscription Info 2/20/25

Comments/Corr 2/20/25

Basic Flight Info 2/20/25

Publication Policy 2/20/25

Reg & Advis Cir 2/20/25

Table of Contents

i 1/22/26

ii 1/22/26

iii 1/22/26

iv 1/22/26

v 1/22/26

vi 1/22/26

vii 1/22/26

viii 1/22/26

ix 1/22/26

x 1/22/26

xi 1/22/26

xii 1/22/26

xiii 1/22/26

Chapter 1. Air Navigation

Section 1. Navigation Aids

1−1−1 2/20/25

1−1−2 2/20/25

1−1−3 2/20/25

1−1−4 2/20/25

1−1−5 2/20/25

1−1−6 2/20/25

1−1−7 2/20/25

1−1−8 2/20/25

1−1−9 2/20/25

1−1−10 2/20/25

PAGE DATE

1−1−11 8/7/25

1−1−12 2/20/25

1−1−13 2/20/25

1−1−14 2/20/25

1−1−15 2/20/25

1−1−16 2/20/25

1−1−17 2/20/25

1−1−18 2/20/25

1−1−19 2/20/25

1−1−20 2/20/25

1−1−21 2/20/25

1−1−22 8/7/25

1−1−23 2/20/25

1−1−24 1/22/26

1−1−25 2/20/25

1−1−26 1/22/26

1−1−27 1/22/26

1−1−28 1/22/26

1−1−29 1/22/26

1−1−30 1/22/26

1−1−31 1/22/26

1−1−32 1/22/26

1−1−33 1/22/26

1−1−34 2/20/25

1−1−35 2/20/25

1−1−36 2/20/25

1−1−37 2/20/25

1−1−38 2/20/25

1−1−39 2/20/25

1−1−40 2/20/25

1−1−41 1/22/26

Section 2. Performance−Based

Navigation (PBN) and Area

Navigation (RNA V)

1−2−1 2/20/25

1−2−2 2/20/25

1−2−3 2/20/25

1−2−4 2/20/25

1−2−5 2/20/25

1−2−6 2/20/25

1−2−7 2/20/25

1−2−8 2/20/25

1−2−9 8/7/25

1−2−10 2/20/25

1−2−11 8/7/25

1−2−12 2/20/25

PAGE DATE

Chapter 2. Aeronautical

Lighting and Other Airport

Visual Aids

Section 1. Airport Lighting

Aids

2−1−1 8/7/25

2−1−2 2/20/25

2−1−3 2/20/25

2−1−4 2/20/25

2−1−5 2/20/25

2−1−6 2/20/25

2−1−7 2/20/25

2−1−8 2/20/25

2−1−9 2/20/25

2−1−10 2/20/25

2−1−11 2/20/25

2−1−12 2/20/25

2−1−13 2/20/25

2−1−14 2/20/25

Section 2. Air Navigation and

Obstruction Lighting

2−2−1 2/20/25

2−2−2 2/20/25

Section 3. Airport Marking

Aids and Signs

2−3−1 2/20/25

2−3−2 2/20/25

2−3−3 2/20/25

2−3−4 2/20/25

2−3−5 2/20/25

2−3−6 2/20/25

2−3−7 2/20/25

2−3−8 2/20/25

2−3−9 2/20/25

2−3−10 2/20/25

2−3−11 2/20/25

2−3−12 2/20/25

2−3−13 2/20/25

2−3−14 2/20/25

2−3−15 2/20/25

2−3−16 2/20/25

2−3−17 2/20/25

2−3−18 2/20/25

2−3−19 2/20/25

2−3−20 2/20/25

2−3−21 2/20/25

2−3−22 2/20/25

Checklist of Pages CK−1

AIM 1/22/26

Checklist of Pages

PAGE DATE

2−3−23 2/20/25

2−3−24 2/20/25

2−3−25 2/20/25

2−3−26 2/20/25

2−3−27 2/20/25

2−3−28 2/20/25

2−3−29 2/20/25

2−3−30 2/20/25

2−3−31 2/20/25

2−3−32 8/7/25

2−3−33 8/7/25

2−3−34 8/7/25

2−3−35 8/7/25

2−3−36 8/7/25

2−3−37 8/7/25

Chapter 3. Airspace

Section 1. General

3−1−1 2/20/25

3−1−2 2/20/25

3−1−3 2/20/25

Section 2. Controlled Airspace

3−2−1 2/20/25

3−2−2 2/20/25

3−2−3 2/20/25

3−2−4 2/20/25

3−2−5 2/20/25

3−2−6 2/20/25

3−2−7 2/20/25

3−2−8 2/20/25

3−2−9 2/20/25

3−2−10 8/7/25

3−2−11 2/20/25

Section 3. Class G Airspace

3−3−1 2/20/25

Section 4. Special Use Airspace

3−4−1 2/20/25

3−4−2 2/20/25

3−4−3 2/20/25

Section 5. Other Airspace

Areas

3−5−1 2/20/25

3−5−2 2/20/25

3−5−3 2/20/25

3−5−4 2/20/25

3−5−5 2/20/25

PAGE DATE

3−5−6 2/20/25

3−5−7 8/7/25

3−5−8 1/22/26

3−5−9 8/7/25

3−5−10 2/20/25

3−5−11 8/7/25

Chapter 4. Air Traffic Control

Section 1. Services Available to

Pilots

4−1−1 8/7/25

4−1−2 2/20/25

4−1−3 2/20/25

4−1−4 2/20/25

4−1−5 2/20/25

4−1−6 2/20/25

4−1−7 2/20/25

4−1−8 2/20/25

4−1−9 2/20/25

4−1−10 2/20/25

4−1−11 8/7/25

4−1−12 2/20/25

4−1−13 2/20/25

4−1−14 2/20/25

4−1−15 2/20/25

4−1−16 2/20/25

4−1−17 2/20/25

4−1−18 2/20/25

4−1−19 2/20/25

4−1−20 8/7/25

4−1−21 2/20/25

4−1−22 1/22/26

4−1−23 1/22/26

Section 2. Radio

Communications Phraseology

and Techniques

4−2−1 2/20/25

4−2−2 2/20/25

4−2−3 2/20/25

4−2−4 2/20/25

4−2−5 2/20/25

4−2−6 2/20/25

4−2−7 2/20/25

4−2−8 2/20/25

4−2−9 2/20/25

PAGE DATE

Section 3. Airport Operations

4−3−1 8/7/25

4−3−2 8/7/25

4−3−3 8/7/25

4−3−4 2/20/25

4−3−5 2/20/25

4−3−6 2/20/25

4−3−7 2/20/25

4−3−8 2/20/25

4−3−9 2/20/25

4−3−10 2/20/25

4−3−11 2/20/25

4−3−12 2/20/25

4−3−13 2/20/25

4−3−14 8/7/25

4−3−15 2/20/25

4−3−16 2/20/25

4−3−17 2/20/25

4−3−18 2/20/25

4−3−19 2/20/25

4−3−20 2/20/25

4−3−21 2/20/25

4−3−22 2/20/25

4−3−23 2/20/25

4−3−24 2/20/25

4−3−25 2/20/25

4−3−26 2/20/25

4−3−27 2/20/25

4−3−28 2/20/25

4−3−29 2/20/25

4−3−30 2/20/25

4−3−31 2/20/25

4−3−32 2/20/25

4−3−33 2/20/25

4−3−34 2/20/25

4−3−35 2/20/25

4−3−36 2/20/25

4−3−37 2/20/25

Section 4. ATC Clearances and

Aircraft Separation

4−4−1 2/20/25

4−4−2 2/20/25

4−4−3 2/20/25

4−4−4 2/20/25

4−4−5 2/20/25

4−4−6 2/20/25

4−4−7 2/20/25

4−4−8 2/20/25

CK−2 Checklist of Pages

1/22/26 AIM

Checklist of Pages

PAGE DATE

4−4−9 2/20/25

4−4−10 2/20/25

4−4−11 2/20/25

4−4−12 2/20/25

4−4−13 2/20/25

4−4−14 2/20/25

Section 5. Surveillance

Systems

4−5−1 2/20/25

4−5−2 2/20/25

4−5−3 2/20/25

4−5−4 8/7/25

4−5−5 2/20/25

4−5−6 2/20/25

4−5−7 2/20/25

4−5−8 2/20/25

4−5−9 2/20/25

4−5−10 2/20/25

4−5−11 2/20/25

4−5−12 2/20/25

4−5−13 2/20/25

4−5−14 2/20/25

4−5−15 2/20/25

4−5−16 2/20/25

4−5−17 2/20/25

4−5−18 8/7/25

4−5−19 2/20/25

4−5−20 2/20/25

4−5−21 2/20/25

Section 6. Operational Policy/

Procedures for Reduced Vertical

Separation Minimum (RVSM) in

the Domestic U.S., Alaska,

Offshore Airspace and the San

Juan FIR

4−6−1 8/7/25

4−6−2 2/20/25

4−6−3 2/20/25

4−6−4 2/20/25

4−6−5 2/20/25

4−6−6 2/20/25

4−6−7 2/20/25

4−6−8 2/20/25

4−6−9 2/20/25

4−6−10 2/20/25

PAGE DATE

Section 7. Operational Policy/

Procedures for the Gulf of

America 50 NM Lateral

Separation Initiative

4−7−1 1/22/26

4−7−2 1/22/26

Chapter 5. Air Traffic

Procedures

Section 1. Preflight

5−1−1 1/22/26

5−1−2 1/22/26

5−1−3 8/7/25

5−1−4 2/20/25

5−1−5 2/20/25

5−1−6 2/20/25

5−1−7 2/20/25

5−1−8 2/20/25

5−1−9 2/20/25

5−1−10 2/20/25

5−1−11 2/20/25

5−1−12 2/20/25

5−1−13 2/20/25

5−1−14 2/20/25

5−1−15 2/20/25

5−1−16 2/20/25

5−1−17 2/20/25

5−1−18 2/20/25

5−1−19 2/20/25

5−1−20 2/20/25

5−1−21 2/20/25

Section 2. Departure

Procedures

5−2−1 2/20/25

5−2−2 2/20/25

5−2−3 2/20/25

5−2−4 2/20/25

5−2−5 2/20/25

5−2−6 2/20/25

5−2−7 2/20/25

5−2−8 8/7/25

5−2−9 8/7/25

5−2−10 8/7/25

5−2−11 8/7/25

5−2−12 8/7/25

5−2−13 8/7/25

5−2−14 8/7/25

5−2−15 8/7/25

PAGE DATE

5−2−16 8/7/25

Section 3. En Route

Procedures

5−3−1 1/22/26

5−3−2 1/22/26

5−3−3 1/22/26

5−3−4 1/22/26

5−3−5 1/22/26

5−3−6 1/22/26

5−3−7 1/22/26

5−3−8 1/22/26

5−3−9 1/22/26

5−3−10 1/22/26

5−3−11 1/22/26

5−3−12 1/22/26

5−3−13 1/22/26

5−3−14 1/22/26

5−3−15 1/22/26

5−3−16 1/22/26

5−3−17 1/22/26

5−3−18 1/22/26

5−3−19 1/22/26

5−3−20 1/22/26

5−3−21 1/22/26

5−3−22 1/22/26

5−3−23 1/22/26

5−3−24 1/22/26

5−3−25 1/22/26

5−3−26 1/22/26

5−3−27 1/22/26

5−3−28 1/22/26

5−3−29 1/22/26

5−3−30 1/22/26

5−3−31 1/22/26

5−3−32 1/22/26

5−3−33 1/22/26

5−3−34 1/22/26

Section 4. Arrival Procedures

5−4−1 2/20/25

5−4−2 2/20/25

5−4−3 1/22/26

5−4−4 2/20/25

5−4−5 2/20/25

5−4−6 2/20/25

5−4−7 8/7/25

5−4−8 8/7/25

5−4−9 8/7/25

5−4−10 2/20/25

5−4−11 2/20/25

Checklist of Pages CK−3

15

20

25

30

35

40

45

50

55

60

AIM 1/22/26

Checklist of Pages

PAGE DATE

5−4−12 2/20/25

5−4−13 2/20/25

5−4−14 2/20/25

5−4− 2/20/25

5−4−16 2/20/25

5−4−17 2/20/25

5−4−18 2/20/25

5−4−19 2/20/25

5−4− 2/20/25

5−4−21 2/20/25

5−4−22 2/20/25

5−4−23 2/20/25

5−4−24 2/20/25

5−4− 2/20/25

5−4−26 2/20/25

5−4−27 2/20/25

5−4−28 8/7/25

5−4−29 8/7/25

5−4− 8/7/25

5−4−31 8/7/25

5−4−32 8/7/25

5−4−33 8/7/25

5−4−34 8/7/25

5−4− 2/20/25

5−4−36 2/20/25

5−4−37 2/20/25

5−4−38 2/20/25

5−4−39 2/20/25

5−4− 8/7/25

5−4−41 8/7/25

5−4−42 2/20/25

5−4−43 1/22/26

5−4−44 2/20/25

5−4− 2/20/25

5−4−46 2/20/25

5−4−47 2/20/25

5−4−48 2/20/25

5−4−49 2/20/25

5−4− 2/20/25

5−4−51 2/20/25

5−4−52 1/22/26

5−4−53 1/22/26

5−4−54 1/22/26

5−4− 1/22/26

5−4−56 1/22/26

5−4−57 1/22/26

5−4−58 1/22/26

5−4−59 1/22/26

5−4− 1/22/26

5−4−61 1/22/26

PAGE DATE

5−4−62 1/22/26

5−4−63 2/20/25

5−4−64 8/7/25

5−4−65 8/7/25

5−4−66 8/7/25

5−4−67 8/7/25

5−4−68 8/7/25

Section 5. Pilot/Controller

Roles and Responsibilities

5−5−1 8/7/25

5−5−2 2/20/25

5−5−3 2/20/25

5−5−4 2/20/25

5−5−5 2/20/25

5−5−6 2/20/25

5−5−7 2/20/25

5−5−8 2/20/25

5−5−9 2/20/25

5−5−10 2/20/25

Section 6. National Security

and Interception Procedures

5−6−1 2/20/25

5−6−2 2/20/25

5−6−3 2/20/25

5−6−4 2/20/25

5−6−5 2/20/25

5−6−6 2/20/25

5−6−7 2/20/25

5−6−8 2/20/25

5−6−9 2/20/25

5−6−10 2/20/25

5−6−11 2/20/25

5−6−12 2/20/25

5−6−13 2/20/25

5−6−14 2/20/25

5−6−15 2/20/25

Chapter 6. Emergency

Procedures

Section 1. General

6−1−1 2/20/25

Section 2. Emergency Services

Available to Pilots

6−2−1 2/20/25

6−2−2 2/20/25

6−2−3 2/20/25

PAGE DATE

6−2−4 2/20/25

6−2−5 2/20/25

6−2−6 2/20/25

6−2−7 2/20/25

6−2−8 2/20/25

6−2−9 2/20/25

6−2−10 2/20/25

6−2−11 2/20/25

6−2−12 2/20/25

6−2−13 2/20/25

6−2−14 2/20/25

6−2−15 2/20/25

6−2−16 2/20/25

Section 3. Distress and

Urgency Procedures

6−3−1 2/20/25

6−3−2 2/20/25

6−3−3 2/20/25

6−3−4 2/20/25

6−3−5 2/20/25

6−3−6 2/20/25

6−3−7 2/20/25

6−3−8 2/20/25

Section 4. Two−way Radio

Communications Failure

6−4−1 2/20/25

6−4−2 2/20/25

6−4−3 2/20/25

Section 5. Aircraft Rescue and

Fire Fighting Communications

6−5−1 2/20/25

6−5−2 2/20/25

Chapter 7. Safety of Flight

Section 1. Meteorology

7−1−1 2/20/25

7−1−2 1/22/26

7−1−3 1/22/26

7−1−4 1/22/26

7−1−5 1/22/26

7−1−6 8/7/25

7−1−7 2/20/25

7−1−8 2/20/25

7−1−9 2/20/25

7−1−10 8/7/25

CK−4 Checklist of Pages

7/9/26 AIM

Checklist of Pages

PAGE DATE

7−1−11 8/7/25

7−1−12 2/20/25

7−1−13 2/20/25

7−1−14 7/9/26

7−1−15 2/20/25

7−1−16 8/7/25

7−1−17 2/20/25

7−1−18 2/20/25

7−1−19 2/20/25

7−1−20 2/20/25

7−1−21 2/20/25

7−1−22 8/7/25

7−1−23 2/20/25

7−1−24 2/20/25

7−1−25 8/7/25

7−1−26 2/20/25

7−1−27 2/20/25

7−1−28 2/20/25

7−1−29 2/20/25

7−1−30 2/20/25

7−1−31 2/20/25

7−1−32 2/20/25

7−1−33 2/20/25

7−1−34 2/20/25

7−1−35 2/20/25

7−1−36 2/20/25

7−1−37 2/20/25

7−1−38 2/20/25

7−1−39 2/20/25

7−1−40 2/20/25

7−1−41 2/20/25

7−1−42 2/20/25

7−1−43 2/20/25

7−1−44 2/20/25

7−1−45 2/20/25

7−1−46 2/20/25

7−1−47 2/20/25

7−1−48 2/20/25

7−1−49 2/20/25

7−1−50 2/20/25

7−1−51 2/20/25

7−1−52 2/20/25

7−1−53 2/20/25

7−1−54 2/20/25

7−1−55 2/20/25

7−1−56 2/20/25

7−1−57 2/20/25

7−1−58 2/20/25

7−1−59 2/20/25

7−1−60 2/20/25

PAGE DATE

7−1−61 2/20/25

7−1−62 2/20/25

7−1−63 2/20/25

7−1−64 2/20/25

7−1−65 2/20/25

7−1−66 2/20/25

7−1−67 2/20/25

7−1−68 2/20/25

7−1−69 2/20/25

7−1−70 2/20/25

7−1−71 2/20/25

7−1−72 2/20/25

7−1−73 2/20/25

7−1−74 2/20/25

7−1−75 2/20/25

7−1−76 2/20/25

7−1−77 2/20/25

7−1−78 2/20/25

Section 2. Barometric

Altimeter Errors and Setting

Procedures

7−2−1 2/20/25

7−2−2 2/20/25

7−2−3 8/7/25

Section 3. Cold Temperature

Barometric Altimeter Errors,

Setting Procedures and Cold

Temperature Airports (CTA)

7−3−1 2/20/25

7−3−2 2/20/25

7−3−3 2/20/25

7−3−4 2/20/25

7−3−5 2/20/25

7−3−6 2/20/25

7−3−7 2/20/25

7−3−8 2/20/25

Section 4. Wake Turbulence

7−4−1 2/20/25

7−4−2 2/20/25

7−4−3 2/20/25

7−4−4 2/20/25

7−4−5 2/20/25

7−4−6 2/20/25

7−4−7 2/20/25

7−4−8 1/22/26

7−4−9 1/22/26

PAGE DATE

Section 5. Bird Hazards and

Flight Over National Refuges,

Parks, and Forests

7−5−1 2/20/25

7−5−2 2/20/25

Section 6. Potential Flight

Hazards

7−6−1 8/7/25

7−6−2 2/20/25

7−6−3 1/22/26

7−6−4 1/22/26

7−6−5 2/20/25

7−6−6 2/20/25

7−6−7 2/20/25

7−6−8 2/20/25

7−6−9 1/22/26

7−6−10 1/22/26

7−6−11 2/20/25

7−6−12 1/22/26

7−6−13 1/22/26

7−6−14 1/22/16

7−6−15 1/22/26

7−6−16 2/20/25

7−6−17 2/20/25

7−6−18 8/7/25

Section 7. Safety, Accident,

and Hazard Reports

7−7−1 2/20/25

7−7−2 2/20/25

7−7−3 1/22/26

7−7−4 1/22/26

Chapter 8. Medical Facts for

Pilots

Section 1. Fitness for Flight

8−1−1 2/20/25

8−1−2 2/20/25

8−1−3 2/20/25

8−1−4 2/20/25

8−1−5 2/20/25

8−1−6 2/20/25

8−1−7 2/20/25

8−1−8 2/20/25

8−1−9 2/20/25

8−1−10 2/20/25

Checklist of Pages CK−5

AIM 7/9/26

Checklist of Pages

PAGE DATE

Chapter 9. Aeronautical

Charts and Related

Publications

Section 1. Types of Charts

Available

9−1−1 8/7/25

9−1−2 8/7/25

9−1−3 8/7/25

9−1−4 8/7/25

9−1−5 8/7/25

9−1−6 8/7/25

9−1−7 8/7/25

9−1−8 8/7/25

9−1−9 1/22/26

9−1−10 8/7/25

9−1−11 8/7/25

9−1−12 1/22/26

9−1−13 8/7/25

9−1−14 8/7/25

9−1−15 8/7/25

Chapter 10. Helicopter

Operations

Section 1. Helicopter IFR

Operations

10−1−1 2/20/25

10−1−2 2/20/25

10−1−3 2/20/25

10−1−4 2/20/25

10−1−5 7/9/26

10−1−6 7/9/26

10−1−7 7/9/26

10−1−8 2/20/25

Section 2. Special Operations

10−2−1 8/7/25

10−2−2 8/7/25

10−2−3 8/7/25

10−2−4 2/20/25

10−2−5 2/20/25

10−2−6 2/20/25

10−2−7 2/20/25

10−2−8 2/20/25

10−2−9 2/20/25

10−2−10 2/20/25

10−2−11 2/20/25

10−2−12 2/20/25

10−2−13 2/20/25

10−2−14 2/20/25

10−2−15 2/20/25

PAGE DATE

10−2−16 2/20/25

10−2−17 2/20/25

10−2−18 2/20/25

10−2−19 2/20/25

10−2−20 2/20/25

Chapter 11. Unmanned

Aircraft Systems (UAS)

Section 1. General

11−1−1 2/20/25

11−1−2 2/20/25

Section 2. Small Unmanned

Aircraft System (sUAS)

11−2−1 2/20/25

11−2−2 2/20/25

11−2−3 2/20/25

Section 3. Large UAS

(MGOW 55 Pounds or More)

11−3−1 2/20/25

11−3−2 2/20/25

11−3−3 2/20/25

11−3−4 2/20/25

11−3−5 2/20/25

11−3−6 2/20/25

Section 4. Airspace Access for

UAS

11−4−1 2/20/25

11−4−2 2/20/25

11−4−3 2/20/25

11−4−4 2/20/25

11−4−5 2/20/25

11−4−6 1/22/26

11−4−7 1/22/25

11−4−8 1/22/26

11−4−9 2/20/25

Section 5. UAS Pilot Testing,

Certification and

Responsibilities

PAGE DATE

11−5−1 2/20/25

11−5−2 2/20/25

11−5−3 2/20/25

Section 6. Advanced Air

Mobility

PAGE DATE

11−6−1 2/20/25

Section 7. UAS Operations on

Airports

11−7−1 2/20/25

Section 8. Other Information

and Best Practices

11−8−1 2/20/25

11−8−2 2/20/25

11−8−3 2/20/25

11−8−4 8/7/25

Appendices

Appendix 1−1 2/20/25

Env N/A

Appendix 2−1 2/20/25

Appendix 3−1 7/9/26

Appendix 3−2 1/22/26

Appendix 3−3 1/22/26

Appendix 3−4 1/22/26

Appendix 3−5 1/22/26

Appendix 4−1 2/20/25

Appendix 4−2 2/20/25

Appendix 4−3 2/20/25

Appendix 4−4 2/20/25

Appendix 4−5 2/20/25

Appendix 4−6 2/20/25

Appendix 4−7 2/20/25

Appendix 4−8 2/20/25

Appendix 4−9 2/20/25

Appendix 4−10 2/20/25

Appendix 4−11 8/7/25

Appendix 4−12 8/7/25

Appendix 4−13 7/9/26

Appendix 4−14 7/9/26

Appendix 4−15 7/9/26

Appendix 4−16 7/9/26

Appendix 4−17 7/9/26

Appendix 4−18 7/9/26

Appendix 4−19 7/9/26

Appendix 4−20 7/9/26

Appendix 4−21 7/9/26

Appendix 4−22 2/20/25

Appendix 4−23 2/20/25

Appendix 5−1 2/20/25

Appendix 5−2 2/20/25

Appendix 5−3 2/20/25

CK−6 Checklist of Pages

1/22/26 AIM

Checklist of Pages

PAGE DATE

P/CG

PCG−1 1/22/26

PCG−2 8/7/25

PCG A−1 2/20/25

PCG A−2 2/20/25

PCG A−3 2/20/25

PCG A−4 2/20/25

PCG A−5 2/20/25

PGC A−6 2/20/25

PCG A−7 2/20/25

PCG A−8 1/22/26

PCG A−9 1/22/26

PCG A−10 1/22/26

PCG A−11 1/22/26

PCG A−12 1/22/26

PCG A−13 1/22/26

PCG A−14 1/22/26

PCG A−15 1/22/26

PCG A−16 1/22/26

PCG A−17 1/22/26

PCG A−18 1/22/26

PCG A−19 1/22/26

PCG A−20 1/22/26

PCG A−21 1/22/26

PCG B−1 2/20/25

PCG B−2 2/20/25

PCG C−1 2/20/25

PCG C−2 2/20/25

PCG C−3 2/20/25

PCG C−4 2/20/25

PCG C−5 2/20/25

PCG C−6 2/20/25

PCG C−7 2/20/25

PCG C−8 1/22/26

PCG C−9 2/20/25

PCG C−10 2/20/25

PCG C−11 2/20/25

PCG C−12 2/20/25

PCG D−1 1/22/26

PCG D−2 1/22/26

PCG D−3 1/22/26

PCG D−4 1/22/26

PCG D−5 1/22/26

PCG E−1 1/22/26

PCG E−2 1/22/26

PCG E−3 1/22/26

PCG F−1 2/20/25

PCG F−2 2/20/25

PCG F−3 2/20/25

PAGE DATE

PCG F−4 2/20/25

PCG F−5 8/7/25

PCG F−6 2/20/25

PCG F−7 2/20/25

PCG G−1 2/20/25

PCG G−2 2/20/25

PCG G−3 2/20/25

PCG H−1 8/7/25

PCG H−2 2/20/25

PCG H−3 2/20/25

PCG I−1 2/20/25

PCG I−2 2/20/25

PCG I−3 2/20/25

PCG I−4 2/20/25

PCG I−5 2/20/25

PCG I−6 2/20/25

PCG I−7 2/20/25

PCG J−1 2/20/25

PCG K−1 2/20/25

PCG L−1 8/7/25

PCG L−2 8/7/25

PCG L−3 8/7/25

PCG L−4 8/7/25

PCG M−1 2/20/25

PCG M−2 2/20/25

PCG M−3 2/20/25

PCG M−4 2/20/25

PCG M−5 2/20/25

PCG M−6 2/20/25

PCG M−7 2/20/25

PCG N−1 1/22/26

PCG N−2 8/7/25

PCG N−3 8/7/25

PCG N−4 8/7/25

PCG O−1 2/20/25

PCG O−2 2/20/25

PCG O−3 2/20/25

PCG O−4 2/20/25

PCG P−1 2/20/25

PCG P−2 1/22/26

PCG P−3 1/22/26

PCG P−4 1/22/26

PCG P−5 1/22/26

PCG P−6 1/22/26

PCG Q−1 2/20/25

PCG R−1 2/20/25

PCG R−2 2/20/25

PCG R−3 2/20/25

PCG R−4 2/20/25

PCG R−5 2/20/25

PAGE DATE

PCG R−6 2/20/25

PCG R−7 2/20/25

PCG R−8 8/7/25

PCG R−9 2/20/25

PCG R−10 2/20/25

PCG R−11 2/20/25

PCG S−1 2/20/25

PCG S−2 8/7/25

PCG S−3 8/7/25

PCG S−4 8/7/25

PCG S−5 8/7/25

PCG S−6 8/7/25

PCG S−7 8/7/25

PCG S−8 8/7/25

PCG S−9 8/7/25

PCG S−10 8/7/25

PCG S−11 8/7/25

PCG S−12 8/7/25

PCG T−1 2/20/25

PCG T−2 2/20/25

PCG T−3 1/22/26

PCG T−4 1/22/26

PCG T−5 1/22/26

PCG T−6 1/22/26

PCG T−7 1/22/26

PCG T−8 2/20/25

PCG T−9 8/7/25

PCG T−10 1/22/26

PCG T−11 1/22/26

PCG T−12 8/7/25

PCG U−1 1/22/26

PCG U−2 1/22/26

PCG V−1 8/7/25

PCG V−2 8/7/25

PCG V−3 8/7/25

PCG V−4 8/7/25

PCG V−5 8/7/25

PCG W−1 1/22/26

PCG W−2 2/20/25

Index

I−1 1/22/26

I−2 1/22/26

I−3 1/22/26

I−4 1/22/26

I−5 1/22/26

I−6 1/22/26

I−7 1/22/26

I−8 1/22/26

I−9 1/22/26

Checklist of Pages CK−7

U.S. Department

of Transportation

Federal Aviation

Administration

AERONAUTICAL

INFORMATION

MANUAL

Change 3

July 9, 2026

DO NOT DESTROY

BASIC DATED

February 20, 2025

7/9/26 AIM

Aeronautical Information Manual

Explanation of Changes

Effective: July 9, 2026

a. 4−7−4. AUTHORITY FOR OPERATONS WITH A SINGLE LONG−RANGE NA VIGATION

SYSTEM

This change updates all references from the B054 authorization to be replaced with B036 authorization.

b. 5−1−1. PREFLIGHT PREPARATION

5−4−5. INSTRUMENT APPROACH PROCEDURE (IAP) CHARTS

This change updates AIM paragraph 5−4−5 to clarify that PPR requirements may also apply to civil airports, not

just military locations, based on NOTAM publication. These updates promote standardization across FAA

publications and provide clearer guidance to users of the NAS. This change also adds a reference to 5–1–1 for

added support and understanding.

c. 5−1−2. FOLLOW IFR PROCEDURES EVEN WHEN OPERATING VFR

This change adds the recommended practice of preloading intended GPS waypoints into the GPS receiver while

the aircraft is on the ground.

d. 5−5−5. MISSED APPROACH

This change reverts the text to a previous version, which matches the tense and context of the Pilot/Controller

Roles/Responsibilities. The information being removed is contained in the referenced Chapter 7, Section 3, and

in paragraph 5−1−17.

e. 7−1−6. INFLIGHT A VIATION WEATHER ADVISORIES

This change updates language, stating the new forecast valid time and changes the outlook valid time period in

the example to 1 hour.

f. 10−1−4. THE GULF OF AMERICA GRID SYSTEM

This change updates language and removes some of the historical background, as the technologies involved are

more common than they were at the last update.

g. Editorial Changes

Editorial changes include adding 23 NM Lateral and 20 NM Longitudinal separation standards to TBL 4−16 in

Appendix 4; replacing the term Decision Height with Decision Altitude when referring to what minima is

published for a Precision Approach (PAR); removing the term Center Radar Approach Control (CERAP) and

adding Combined Control Facility (CCF) to Appendix 3, Abbreviations/Acronyms; updating verbiage in an

example in paragraph 5−2−9 for consistency; and replacing FIG 4−3−1 with a higher quality graphic.

h. Entire Publication

Additional editorial/format changes were made where necessary. Revision bars were not used because of the

insignificant nature of these changes.

Explanation of Changes E of Chg−1

7/9/26 AIM

AIM Change 3

Page Control Chart

July 9, 2026

REMOVE PAGES DATED INSERT PAGES DATED

Checklist of Pages CK−1 through CK−8 .... 1/22/26 Checklist of Pages CK−1 through CK−8 .... 7/9/26

Table of Contents i through xiii ........... 1/22/26 Table of Contents i through xiii ........... 7/9/26

3−2−7 and 3−2−8 ...................... 2/20/25 3−2−7 and 3−2−8 ...................... 7/9/26

4−3−1 through 4−3−3 ................... 8/7/25 4−3−1 through 4−3−3 ................... 7/9/26

4−3−4 through 4−3−1 3 .................. 2/20/25 4−3−4 through 4−3−1 3 .................. 7/9/26

4−3−1 4 .............................. 8/7/25 4−3−1 4 .............................. 7/9/26

4−3−15 through 4−3−3 7 ................. 2/20/25 4−3−15 through 4−3−3 8 ................ 7/9/26

4−7−1 ............................... 1/22/26 4−7−1 ............................... 1/22/26

4−7−2 ............................... 1/22/26 4−7−2 ............................... 7/9/26

5−1−1 ............................... 1/22/26 5−1−1 ............................... 1/22/26

5−1−2 ............................... 1/22/26 5−1−2 ............................... 7/9/26

5−1−3 ............................... 8/7/25 5−1−3 ............................... 7/9/26

5−1−4 and 5−1−5 ...................... 2/20/25 5−1−4 and 5−1−5 ...................... 7/9/26

5−1−6 ............................... 2/20/25 5−1−6 ............................... 2/20/25

5−2−1 1 .............................. 8/7/25 5−2−1 1 .............................. 7/9/26

5−2−1 2 .............................. 8/7/25 5−2−1 2 .............................. 8/7/25

5−4−5 ............................... 2/20/25 5−4−5 ............................... 7/9/26

5−4−6 ............................... 2/20/25 5−4−6 ............................... 2/20/25

5−4−3 7 .............................. 2/20/25 5−4−3 7 .............................. 2/20/25

5−4−3 8 .............................. 2/20/25 5−4−3 8 .............................. 7/9/26

5−5−3 through 5−5−7 ................... 2/20/25 5−5−3 through 5−5−7 ................... 7/9/26

5−5−8 ............................... 2/20/25 5−5−8 ............................... 2/20/25

7−1−1 3 .............................. 2/20/25 7−1−1 3 .............................. 2/20/25

7−1−1 4 .............................. 2/20/25 7−1−1 4 .............................. 7/9/26

7−1−6 1 .............................. 2/20/25 7−1−6 1 .............................. 7/9/26

7−1−6 2 .............................. 2/20/25 7−1−6 2 .............................. 2/20/25

10−1−5 through 10−1−7 ................. 8/7/25 10−1−5 through 10−1−7 ................. 7/9/26

10−1−8 .............................. 2/20/25 10−1−8 .............................. 2/20/25

Appendix 3−1......................... 1/22/26 Appendix 3−1......................... 7/9/26

Appendix 3−2......................... 1/22/26 Appendix 3−2......................... 1/22/26

Appendix 4−13 through Appendix 4−1 6 .... 2/20/25 Appendix 4−13 through Appendix 4−1 6 .... 7/9/26

Appendix 4−1 7........................ 1/22/26 Appendix 4−1 7........................ 7/9/26

Appendix 4−1 8........................ 2/20/25 Appendix 4−1 8........................ 7/9/26

Appendix 4−1 9........................ 1/22/26 Appendix 4−1 9........................ 7/9/26

Appendix 4−20 Appendix 4−2 1........... 2/20/25 Appendix 4−20 Appendix 4−2 1........... 7/9/26

Appendix 4−2 2........................ 2/20/25 Appendix 4−2 2........................ 2/20/25

PCG−1 .............................. 1/22/26 PCG−1 .............................. 7/9/26

PCG C−1 through PCG C−6 ............. 2/20/25 PCG C−1 through PCG C−6 ............. 7/9/26

PCG R−5 and PCG R−6................. 2/20/25 PCG R−5 and PCG R−6................. 7/9/26

PCG S−5............................. 8/7/25 PCG S−5............................. 8/7/25

Page Control Chart i

AIM 1/22/26

PCG S−6 ............................. 8/7/25 PCG S−6 ............................. 7/9/26

Index I−1 through Index I−1 3 ............ 1/22/26 Index I−1 through Index I−1 3 ............ 7/9/26

Page Control Chart ii

7/9/26 AIM

Checklist of Pages

PAGE DATE

Cover 7/9/26

Record of Changes N/A

E of Chg−1 7/9/26

Checklist of Pages

CK−1 7/9/26

CK−2 7/9/26

CK−3 7/9/26

CK−4 7/9/26

CK−5 7/9/26

CK−6 7/9/26

CK−7 7/9/26

CK−8 7/9/26

Subscription Info 2/20/25

Comments/Corr 2/20/25

Basic Flight Info 2/20/25

Publication Policy 2/20/25

Reg & Advis Cir 2/20/25

Table of Contents

i 7/9/26

ii 7/9/26

iii 7/9/26

iv 7/9/26

v 7/9/26

vi 7/9/26

vii 7/9/26

viii 7/9/26

ix 7/9/26

x 7/9/26

xi 7/9/26

xii 7/9/26

xiii 7/9/26

Chapter 1. Air Navigation

Section 1. Navigation Aids

1−1−1 2/20/25

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1−1−4 2/20/25

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1−1−6 2/20/25

1−1−7 2/20/25

1−1−8 2/20/25

1−1−9 2/20/25

1−1−10 2/20/25

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1−1−11 8/7/25

1−1−12 2/20/25

1−1−13 2/20/25

1−1−14 2/20/25

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1−1−17 2/20/25

1−1−18 2/20/25

1−1−19 2/20/25

1−1−20 2/20/25

1−1−21 2/20/25

1−1−22 8/7/25

1−1−23 2/20/25

1−1−24 1/22/26

1−1−25 2/20/25

1−1−26 1/22/26

1−1−27 1/22/26

1−1−28 1/22/26

1−1−29 1/22/26

1−1−30 1/22/26

1−1−31 1/22/26

1−1−32 1/22/26

1−1−33 1/22/26

1−1−34 2/20/25

1−1−35 2/20/25

1−1−36 2/20/25

1−1−37 2/20/25

1−1−38 2/20/25

1−1−39 2/20/25

1−1−40 2/20/25

1−1−41 1/22/26

Section 2. Performance−Based

Navigation (PBN) and Area

Navigation (RNA V)

1−2−1 2/20/25

1−2−2 2/20/25

1−2−3 2/20/25

1−2−4 2/20/25

1−2−5 2/20/25

1−2−6 2/20/25

1−2−7 2/20/25

1−2−8 2/20/25

1−2−9 8/7/25

1−2−10 2/20/25

1−2−11 8/7/25

1−2−12 2/20/25

PAGE DATE

Chapter 2. Aeronautical

Lighting and Other Airport

Visual Aids

Section 1. Airport Lighting

Aids

2−1−1 8/7/25

2−1−2 2/20/25

2−1−3 2/20/25

2−1−4 2/20/25

2−1−5 2/20/25

2−1−6 2/20/25

2−1−7 2/20/25

2−1−8 2/20/25

2−1−9 2/20/25

2−1−10 2/20/25

2−1−11 2/20/25

2−1−12 2/20/25

2−1−13 2/20/25

2−1−14 2/20/25

Section 2. Air Navigation and

Obstruction Lighting

2−2−1 2/20/25

2−2−2 2/20/25

Section 3. Airport Marking

Aids and Signs

2−3−1 2/20/25

2−3−2 2/20/25

2−3−3 2/20/25

2−3−4 2/20/25

2−3−5 2/20/25

2−3−6 2/20/25

2−3−7 2/20/25

2−3−8 2/20/25

2−3−9 2/20/25

2−3−10 2/20/25

2−3−11 2/20/25

2−3−12 2/20/25

2−3−13 2/20/25

2−3−14 2/20/25

2−3−15 2/20/25

2−3−16 2/20/25

2−3−17 2/20/25

2−3−18 2/20/25

2−3−19 2/20/25

2−3−20 2/20/25

2−3−21 2/20/25

2−3−22 2/20/25

Checklist of Pages CK−1

AIM 7/9/26

Checklist of Pages

PAGE DATE

2−3−23 2/20/25

2−3−24 2/20/25

2−3−25 2/20/25

2−3−26 2/20/25

2−3−27 2/20/25

2−3−28 2/20/25

2−3−29 2/20/25

2−3−30 2/20/25

2−3−31 2/20/25

2−3−32 8/7/25

2−3−33 8/7/25

2−3−34 8/7/25

2−3−35 8/7/25

2−3−36 8/7/25

2−3−37 8/7/25

Chapter 3. Airspace

Section 1. General

3−1−1 2/20/25

3−1−2 2/20/25

3−1−3 2/20/25

Section 2. Controlled Airspace

3−2−1 2/20/25

3−2−2 2/20/25

3−2−3 2/20/25

3−2−4 2/20/25

3−2−5 2/20/25

3−2−6 2/20/25

3−2−7 7/9/26

3−2−8 7/9/26

3−2−9 2/20/25

3−2−10 8/7/25

3−2−11 2/20/25

Section 3. Class G Airspace

3−3−1 2/20/25

Section 4. Special Use Airspace

3−4−1 2/20/25

3−4−2 2/20/25

3−4−3 2/20/25

Section 5. Other Airspace

Areas

3−5−1 2/20/25

3−5−2 2/20/25

3−5−3 2/20/25

3−5−4 2/20/25

3−5−5 2/20/25

PAGE DATE

3−5−6 2/20/25

3−5−7 8/7/25

3−5−8 1/22/26

3−5−9 8/7/25

3−5−10 2/20/25

3−5−11 8/7/25

Chapter 4. Air Traffic Control

Section 1. Services Available to

Pilots

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4−1−9 2/20/25

4−1−10 2/20/25

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4−1−12 2/20/25

4−1−13 2/20/25

4−1−14 2/20/25

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4−1−19 2/20/25

4−1−20 8/7/25

4−1−21 2/20/25

4−1−22 1/22/26

4−1−23 1/22/26

Section 2. Radio

Communications Phraseology

and Techniques

4−2−1 2/20/25

4−2−2 2/20/25

4−2−3 2/20/25

4−2−4 2/20/25

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4−2−6 2/20/25

4−2−7 2/20/25

4−2−8 2/20/25

4−2−9 2/20/25

PAGE DATE

Section 3. Airport Operations

4−3−1 7/9/26

4−3−2 7/9/26

4−3−3 7/9/26

4−3−4 7/9/26

4−3−5 7/9/26

4−3−6 7/9/26

4−3−7 7/9/26

4−3−8 7/9/26

4−3−9 7/9/26

4−3−10 7/9/26

4−3−11 7/9/26

4−3−12 7/9/26

4−3−13 7/9/26

4−3−14 7/9/26

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4−3−34 7/9/26

4−3−35 7/9/26

4−3−36 7/9/26

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Section 4. ATC Clearances and

Aircraft Separation

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4−4−2 2/20/25

4−4−3 2/20/25

4−4−4 2/20/25

4−4−5 2/20/25

4−4−6 2/20/25

4−4−7 2/20/25

4−4−8 2/20/25

CK−2 Checklist of Pages

7/9/26 AIM

Checklist of Pages

PAGE DATE

4−4−9 2/20/25

4−4−10 2/20/25

4−4−11 2/20/25

4−4−12 2/20/25

4−4−13 2/20/25

4−4−14 2/20/25

Section 5. Surveillance

Systems

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4−5−3 2/20/25

4−5−4 8/7/25

4−5−5 2/20/25

4−5−6 2/20/25

4−5−7 2/20/25

4−5−8 2/20/25

4−5−9 2/20/25

4−5−10 2/20/25

4−5−11 2/20/25

4−5−12 2/20/25

4−5−13 2/20/25

4−5−14 2/20/25

4−5−15 2/20/25

4−5−16 2/20/25

4−5−17 2/20/25

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4−5−20 2/20/25

4−5−21 2/20/25

Section 6. Operational Policy/

Procedures for Reduced Vertical

Separation Minimum (RVSM) in

the Domestic U.S., Alaska,

Offshore Airspace and the San

Juan FIR

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4−6−2 2/20/25

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4−6−4 2/20/25

4−6−5 2/20/25

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4−6−10 2/20/25

PAGE DATE

Section 7. Operational Policy/

Procedures for the Gulf of

America 50 NM Lateral

Separation Initiative

4−7−1 1/22/26

4−7−2 7/9/26

Chapter 5. Air Traffic

Procedures

Section 1. Preflight

5−1−1 1/22/26

5−1−2 7/9/26

5−1−3 7/9/26

5−1−4 7/9/26

5−1−5 7/9/26

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5−1−7 2/20/25

5−1−8 2/20/25

5−1−9 2/20/25

5−1−10 2/20/25

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5−1−12 2/20/25

5−1−13 2/20/25

5−1−14 2/20/25

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5−1−17 2/20/25

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5−1−21 2/20/25

Section 2. Departure

Procedures

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5−2−5 2/20/25

5−2−6 2/20/25

5−2−7 2/20/25

5−2−8 8/7/25

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5−2−10 8/7/25

5−2−11 7/9/26

5−2−12 8/7/25

5−2−13 8/7/25

5−2−14 8/7/25

5−2−15 8/7/25

PAGE DATE

5−2−16 8/7/25

Section 3. En Route

Procedures

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5−3−2 1/22/26

5−3−3 1/22/26

5−3−4 1/22/26

5−3−5 1/22/26

5−3−6 1/22/26

5−3−7 1/22/26

5−3−8 1/22/26

5−3−9 1/22/26

5−3−10 1/22/26

5−3−11 1/22/26

5−3−12 1/22/26

5−3−13 1/22/26

5−3−14 1/22/26

5−3−15 1/22/26

5−3−16 1/22/26

5−3−17 1/22/26

5−3−18 1/22/26

5−3−19 1/22/26

5−3−20 1/22/26

5−3−21 1/22/26

5−3−22 1/22/26

5−3−23 1/22/26

5−3−24 1/22/26

5−3−25 1/22/26

5−3−26 1/22/26

5−3−27 1/22/26

5−3−28 1/22/26

5−3−29 1/22/26

5−3−30 1/22/26

5−3−31 1/22/26

5−3−32 1/22/26

5−3−33 1/22/26

5−3−34 1/22/26

Section 4. Arrival Procedures

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5−4−2 2/20/25

5−4−3 1/22/26

5−4−4 2/20/25

5−4−5 7/9/26

5−4−6 2/20/25

5−4−7 8/7/25

5−4−8 8/7/25

5−4−9 8/7/25

5−4−10 2/20/25

5−4−11 2/20/25

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15

20

25

30

35

40

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50

55

60

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5−4−13 2/20/25

5−4−14 2/20/25

5−4− 2/20/25

5−4−16 2/20/25

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5−4−19 2/20/25

5−4− 2/20/25

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5−4−22 2/20/25

5−4−23 2/20/25

5−4−24 2/20/25

5−4− 2/20/25

5−4−26 2/20/25

5−4−27 2/20/25

5−4−28 8/7/25

5−4−29 8/7/25

5−4− 8/7/25

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5−4−32 8/7/25

5−4−33 8/7/25

5−4−34 8/7/25

5−4− 2/20/25

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5−4−37 2/20/25

5−4−38 7/9/26

5−4−39 2/20/25

5−4− 8/7/25

5−4−41 8/7/25

5−4−42 2/20/25

5−4−43 1/22/26

5−4−44 2/20/25

5−4− 2/20/25

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5−4−47 2/20/25

5−4−48 2/20/25

5−4−49 2/20/25

5−4− 2/20/25

5−4−51 2/20/25

5−4−52 1/22/26

5−4−53 1/22/26

5−4−54 1/22/26

5−4− 1/22/26

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5−4− 1/22/26

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5−4−63 2/20/25

5−4−64 8/7/25

5−4−65 8/7/25

5−4−66 8/7/25

5−4−67 8/7/25

5−4−68 8/7/25

Section 5. Pilot/Controller

Roles and Responsibilities

5−5−1 8/7/25

5−5−2 2/20/25

5−5−3 7/9/26

5−5−4 7/9/26

5−5−5 7/9/26

5−5−6 7/9/26

5−5−7 7/9/26

5−5−8 2/20/25

5−5−9 2/20/25

5−5−10 2/20/25

Section 6. National Security

and Interception Procedures

5−6−1 2/20/25

5−6−2 2/20/25

5−6−3 2/20/25

5−6−4 2/20/25

5−6−5 2/20/25

5−6−6 2/20/25

5−6−7 2/20/25

5−6−8 2/20/25

5−6−9 2/20/25

5−6−10 2/20/25

5−6−11 2/20/25

5−6−12 2/20/25

5−6−13 2/20/25

5−6−14 2/20/25

5−6−15 2/20/25

Chapter 6. Emergency

Procedures

Section 1. General

6−1−1 2/20/25

Section 2. Emergency Services

Available to Pilots

6−2−1 2/20/25

6−2−2 2/20/25

6−2−3 2/20/25

PAGE DATE

6−2−4 2/20/25

6−2−5 2/20/25

6−2−6 2/20/25

6−2−7 2/20/25

6−2−8 2/20/25

6−2−9 2/20/25

6−2−10 2/20/25

6−2−11 2/20/25

6−2−12 2/20/25

6−2−13 2/20/25

6−2−14 2/20/25

6−2−15 2/20/25

6−2−16 2/20/25

Section 3. Distress and

Urgency Procedures

6−3−1 2/20/25

6−3−2 2/20/25

6−3−3 2/20/25

6−3−4 2/20/25

6−3−5 2/20/25

6−3−6 2/20/25

6−3−7 2/20/25

6−3−8 2/20/25

Section 4. Two−way Radio

Communications Failure

6−4−1 2/20/25

6−4−2 2/20/25

6−4−3 2/20/25

Section 5. Aircraft Rescue and

Fire Fighting Communications

6−5−1 2/20/25

6−5−2 2/20/25

Chapter 7. Safety of Flight

Section 1. Meteorology

7−1−1 2/20/25

7−1−2 1/22/26

7−1−3 1/22/26

7−1−4 1/22/26

7−1−5 1/22/26

7−1−6 8/7/25

7−1−7 2/20/25

7−1−8 2/20/25

7−1−9 2/20/25

7−1−10 8/7/25

CK−4 Checklist of Pages

7/9/26 AIM

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PAGE DATE

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7−1−12 2/20/25

7−1−13 2/20/25

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7−1−22 8/7/25

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7−1−40 2/20/25

7−1−41 2/20/25

7−1−42 2/20/25

7−1−43 2/20/25

7−1−44 2/20/25

7−1−45 2/20/25

7−1−46 2/20/25

7−1−47 2/20/25

7−1−48 2/20/25

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7−1−61 7/9/26

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7−1−65 2/20/25

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7−1−67 2/20/25

7−1−68 2/20/25

7−1−69 2/20/25

7−1−70 2/20/25

7−1−71 2/20/25

7−1−72 2/20/25

7−1−73 2/20/25

7−1−74 2/20/25

7−1−75 2/20/25

7−1−76 2/20/25

7−1−77 2/20/25

7−1−78 2/20/25

Section 2. Barometric

Altimeter Errors and Setting

Procedures

7−2−1 2/20/25

7−2−2 2/20/25

7−2−3 8/7/25

Section 3. Cold Temperature

Barometric Altimeter Errors,

Setting Procedures and Cold

Temperature Airports (CTA)

7−3−1 2/20/25

7−3−2 2/20/25

7−3−3 2/20/25

7−3−4 2/20/25

7−3−5 2/20/25

7−3−6 2/20/25

7−3−7 2/20/25

7−3−8 2/20/25

Section 4. Wake Turbulence

7−4−1 2/20/25

7−4−2 2/20/25

7−4−3 2/20/25

7−4−4 2/20/25

7−4−5 2/20/25

7−4−6 2/20/25

7−4−7 2/20/25

7−4−8 1/22/26

7−4−9 1/22/26

PAGE DATE

Section 5. Bird Hazards and

Flight Over National Refuges,

Parks, and Forests

7−5−1 2/20/25

7−5−2 2/20/25

Section 6. Potential Flight

Hazards

7−6−1 8/7/25

7−6−2 2/20/25

7−6−3 1/22/26

7−6−4 1/22/26

7−6−5 2/20/25

7−6−6 2/20/25

7−6−7 2/20/25

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7−6−14 1/22/16

7−6−15 1/22/26

7−6−16 2/20/25

7−6−17 2/20/25

7−6−18 8/7/25

Section 7. Safety, Accident,

and Hazard Reports

7−7−1 2/20/25

7−7−2 2/20/25

7−7−3 1/22/26

7−7−4 1/22/26

Chapter 8. Medical Facts for

Pilots

Section 1. Fitness for Flight

8−1−1 2/20/25

8−1−2 2/20/25

8−1−3 2/20/25

8−1−4 2/20/25

8−1−5 2/20/25

8−1−6 2/20/25

8−1−7 2/20/25

8−1−8 2/20/25

8−1−9 2/20/25

8−1−10 2/20/25

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PAGE DATE

Chapter 9. Aeronautical

Charts and Related

Publications

Section 1. Types of Charts

Available

9−1−1 8/7/25

9−1−2 8/7/25

9−1−3 8/7/25

9−1−4 8/7/25

9−1−5 8/7/25

9−1−6 8/7/25

9−1−7 8/7/25

9−1−8 8/7/25

9−1−9 1/22/26

9−1−10 8/7/25

9−1−11 8/7/25

9−1−12 1/22/26

9−1−13 8/7/25

9−1−14 8/7/25

9−1−15 8/7/25

Chapter 10. Helicopter

Operations

Section 1. Helicopter IFR

Operations

10−1−1 2/20/25

10−1−2 2/20/25

10−1−3 2/20/25

10−1−4 2/20/25

10−1−5 7/9/26

10−1−6 7/9/26

10−1−7 7/9/26

10−1−8 2/20/25

Section 2. Special Operations

10−2−1 8/7/25

10−2−2 8/7/25

10−2−3 8/7/25

10−2−4 2/20/25

10−2−5 2/20/25

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PAGE DATE

10−2−16 2/20/25

10−2−17 2/20/25

10−2−18 2/20/25

10−2−19 2/20/25

10−2−20 2/20/25

Chapter 11. Unmanned

Aircraft Systems (UAS)

Section 1. General

11−1−1 2/20/25

11−1−2 2/20/25

Section 2. Small Unmanned

Aircraft System (sUAS)

11−2−1 2/20/25

11−2−2 2/20/25

11−2−3 2/20/25

Section 3. Large UAS

(MGOW 55 Pounds or More)

11−3−1 2/20/25

11−3−2 2/20/25

11−3−3 2/20/25

11−3−4 2/20/25

11−3−5 2/20/25

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Section 4. Airspace Access for

UAS

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11−4−3 2/20/25

11−4−4 2/20/25

11−4−5 2/20/25

11−4−6 1/22/26

11−4−7 1/22/25

11−4−8 1/22/26

11−4−9 2/20/25

Section 5. UAS Pilot Testing,

Certification and

Responsibilities

PAGE DATE

11−5−1 2/20/25

11−5−2 2/20/25

11−5−3 2/20/25

Section 6. Advanced Air

Mobility

PAGE DATE

11−6−1 2/20/25

Section 7. UAS Operations on

Airports

11−7−1 2/20/25

Section 8. Other Information

and Best Practices

11−8−1 2/20/25

11−8−2 2/20/25

11−8−3 2/20/25

11−8−4 8/7/25

Appendices

Appendix 1−1 2/20/25

Env N/A

Appendix 2−1 2/20/25

Appendix 3−1 7/9/26

Appendix 3−2 1/22/26

Appendix 3−3 1/22/26

Appendix 3−4 1/22/26

Appendix 3−5 1/22/26

Appendix 4−1 2/20/25

Appendix 4−2 2/20/25

Appendix 4−3 2/20/25

Appendix 4−4 2/20/25

Appendix 4−5 2/20/25

Appendix 4−6 2/20/25

Appendix 4−7 2/20/25

Appendix 4−8 2/20/25

Appendix 4−9 2/20/25

Appendix 4−10 2/20/25

Appendix 4−11 8/7/25

Appendix 4−12 8/7/25

Appendix 4−13 7/9/26

Appendix 4−14 7/9/26

Appendix 4−15 7/9/26

Appendix 4−16 7/9/26

Appendix 4−17 7/9/26

Appendix 4−18 7/9/26

Appendix 4−19 7/9/26

Appendix 4−20 7/9/26

Appendix 4−21 7/9/26

Appendix 4−22 2/20/25

Appendix 4−23 2/20/25

Appendix 5−1 2/20/25

Appendix 5−2 2/20/25

Appendix 5−3 2/20/25

CK−6 Checklist of Pages

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Checklist of Pages

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P/CG

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PCG−2 8/7/25

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PCG I−6 2/20/25

PCG I−7 2/20/25

PCG J−1 2/20/25

PCG K−1 2/20/25

PCG L−1 8/7/25

PCG L−2 8/7/25

PCG L−3 8/7/25

PCG L−4 8/7/25

PCG M−1 2/20/25

PCG M−2 2/20/25

PCG M−3 2/20/25

PCG M−4 2/20/25

PCG M−5 2/20/25

PCG M−6 2/20/25

PCG M−7 2/20/25

PCG N−1 1/22/26

PCG N−2 8/7/25

PCG N−3 8/7/25

PCG N−4 8/7/25

PCG O−1 2/20/25

PCG O−2 2/20/25

PCG O−3 2/20/25

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PCG P−1 2/20/25

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PCG S−1 2/20/25

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PCG S−3 8/7/25

PCG S−4 8/7/25

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PCG S−6 7/9/26

PCG S−7 8/7/25

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PCG S−9 8/7/25

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PCG S−12 8/7/25

PCG T−1 2/20/25

PCG T−2 2/20/25

PCG T−3 1/22/26

PCG T−4 1/22/26

PCG T−5 1/22/26

PCG T−6 1/22/26

PCG T−7 1/22/26

PCG T−8 2/20/25

PCG T−9 8/7/25

PCG T−10 1/22/26

PCG T−11 1/22/26

PCG T−12 8/7/25

PCG U−1 1/22/26

PCG U−2 1/22/26

PCG V−1 8/7/25

PCG V−2 8/7/25

PCG V−3 8/7/25

PCG V−4 8/7/25

PCG V−5 8/7/25

PCG W−1 1/22/26

PCG W−2 2/20/25

Index

I−1 7/9/26

I−2 7/9/26

I−3 7/9/26

I−4 7/9/26

I−5 7/9/26

I−6 7/9/26

I−7 7/9/26

I−8 7/9/26

I−9 7/9/26

Checklist of Pages CK−7

AIM 7/9/26

Checklist of Pages

PAGE DATE

I−10 7/9/26

I−11 7/9/26

I−12 7/9/26

I−13 7/9/26

Back Cover N/A

CK−8 Checklist of Pages

2/20/25 AIM

Subscription Information

This manual is available by its effective date on the FAA’s Air Traffic Plans and Publications website at

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Subscription Information

20 FEB 25 AIM

Comments/Corrections

The office of primary responsibility (OPR) for this manual is:

FAA Headquarters, Mission Support Services

Policy Directorate (AJV−P)

600 Independence Avenue, SW.

Washington, DC 20597

Proposed changes must be submitted electronically, using the following format, to the Policy Directorate

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Notice to Editor

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20 FEB 25 AIM

Federal Aviation Administration (FAA)

The Federal Aviation Administration is responsible for ensuring the safe, efficient, and secure use of the Nation’s

airspace, by military as well as civil aviation, for promoting safety in air commerce, for encouraging and

developing civil aeronautics, including new aviation technology, and for supporting the requirements of national

defense.

The activities required to carry out these responsibilities include: safety regulations; airspace management and

the establishment, operation, and maintenance of a civil−military common system of air traffic control (ATC)

and navigation facilities; research and development in support of the fostering of a national system of airports,

promulgation of standards and specifications for civil airports, and administration of Federal grants−in−aid for

developing public airports; various joint and coope rative activities with the Department of Defense; and

technical assistance (under State Department auspices) to other countries.

Aeronautical Information Manual (AIM)

Basic Flight Information and ATC Procedures

This manual is designed to provide the aviation community with basic flight information and ATC procedures

for use in the National Airspace System (NAS) of the United States. An international version called the

Aeronautical Information Publication contains parallel information, as well as specific information on the

international airports for use by the international community.

This manual contains the fundamentals required in order to fly in the United States NAS. It also contains items

of interest to pilots concerning health and medical facts, factors affecting flight safety, a pilot/controller glossary

of terms used in the ATC System, and information on safety, accident, and hazard reporting.

This manual is complemented by other operational publications which are available via separate subscriptions.

These publications are:

The Chart Supplement U.S., the Chart Supplemen t Alaska, and the Chart Supplement Pacific − These

publications contain information on airports, communications, navigation aids, instrument landing systems,

VOR receiver check points, preferred routes, Flight Service Station/Weather Service telephone numbers, Air

Route Traffic Control Center (ARTCC) frequencies, part−time surface areas, and various other pertinent special

notices essential to air navigation. These publications are available through a network of FAA approved print

providers. A listing of products, dates of latest editions, and print providers is available on the Aeronautical

Information Services (AIS) website at: http://www.faa.gov/air_traffic/flight_info/aeronav/print_providers/.

Publication Schedule

Basic or Change Cutoff Date

for Completion

Effective Date

of Publication

Basic Manual 9/5/24 2/20/25

Change 1 2/20/25 8/7/25

Change 2 8/7/25 1/22/26

Change 3 1/22/26 7/9/26

Basic Manual 7/9/26 12/24/26

Change 1 12/24/26 6/10727

Change 2 6/10/27 11/25/27

Change 3 11/25/27 5/11/28

Basic Flight Information and ATC Procedures

2/20/25 AIM

Flight Information Publication Policy

The following is in essence, the statement issued by the FAA Administrator and published in the December

10, 1964, issue of the Federal Register, concerning the FAA policy as pertaining to the type of information

that will be published as NOTAMs and in the Aeronautical Information Manual.

a. It is a pilot’s inherent responsibility to be alert at all times for and in anticipation of all circumstances,

situations, and conditions affecting the safe operation of the aircraft. For example, a pilot should expect to

find air traffic at any time or place. At or near both civil and military airports and in the vicinity of known

training areas, a pilot should expect concentrated air traffic and realize concentrations of air traffic are not

limited to these places.

b. It is the general practice of the agency to advertise by NOTAM or other flight information publications

such information it may deem appropriate; information which the agency may from time to time make avail-

able to pilots is solely for the purpose of assisting them in executing their regulatory responsibilities. Such

information serves the aviation community as a whole and not pilots individually.

c. The fact that the agency under one particular situation or another may or may not furnish information

does not serve as a precedent of the agency’s responsibility to the aviation community; neither does it give

assurance that other information of the same or similar nature will be advertised, nor, does it guarantee that

any and all information known to the agency will be advertised.

d. This publication, while not regulatory, provides information which reflects examples of operating tech-

niques and procedures which may be requirements in other federal publications or regulations. It is made

available solely to assist pilots in executing their responsibilities required by other publications.

Consistent with the foregoing, it is the policy of the Federal Aviation Administration to furnish information

only when, in the opinion of the agency, a unique situation should be advertised and not to furnish routine

information such as concentrations of air traffic, either civil or military. The Aeronautical Information

Manual will not contain informative items concerning everyday circumstances that pilots should, either by

good practices or regulation, expect to encounter or avoid.

Flight Information Publication Policy

2/20/25 AIM

Aeronautical Information Manual (AIM)

Code of Federal Regulations and Advisory Circulars

Code of Federal Regulations - The FAA publishes the Code of Federal Regulations (CFR) to make readily

available to the aviation community the regulatory requirements placed upon them. These regulations are sold

as individual parts by the Superintendent of Documents.

The more frequently amended parts are sold on subscription service w ith subscribers receiving changes

automatically as issued. Less active parts are sold on a single−sale basis. Changes to single-sale parts will be sold

separately as issued. Information concerning these changes will be furnished by the FAA through its Status of

Federal Aviation Regulations, AC 00−44.

Advisory Circulars - The FAA issues Advisory Circulars (AC) to inform the aviation public in a systematic way

of nonregulatory material. Unless incorporated into a regulation by reference, the contents of an advisory circular

are not binding on the public. Advisory Circulars are issued in a numbered subject system corresponding to the

subject areas of the Code of Federal Regulations (CFR) (Title 14, Chapter 1, FAA).

NOTE−

Current AC information can be found at: https://www.faa.gov/regulations_policies/advisory_circulars/.

External References - All references to Advisory Circulars and other FAA publications in the Aeronautical

Information Manual include the FAA Advisory Circular or Order identification numbers (when available).

However, due to varied publication dates, the basic publication letter is not included.

EXAMPLE−

F AA Order JO 7110.65X, Air Traffic Control, is referenced as F AA Order JO 7110.65.

Code of Federal Regulations and Advisory Circulars

7/9/26 AIM

Table of Contents

Chapter 1. Air Navigation

Section 1. Navigation Aids

Paragraph Page

1−1−1. General .............................................................. 1−1−1

1−1−2. Nondirectional Radio Beacon (NDB) ...................................... 1−1−1

1−1−3. VHF Omni−directional Range (VOR) ..................................... 1−1−1

1−1−4. VOR Receiver Check .................................................. 1−1−3

1−1−5. Tactical Air Navigation (TACAN) ........................................ 1−1−4

1−1−6. VHF Omni−directional Range/Tactical Air Navigation (VORTAC) .............. 1−1−5

1−1−7. Distance Measuring Equipment (DME) .................................... 1−1−5

1−1−8. NA V AID Service V olumes .............................................. 1−1−6

1−1−9. Instrument Landing System (ILS) ......................................... 1−1−11

1−1−10. Simplified Directional Facility (SDF) ..................................... 1−1−18

1−1−11. NA V AID Identifier Removal During Maintenance........................... 1−1−20

1−1−12. NA V AIDs with V oice.................................................. 1−1−20

1−1−13. User Reports Requested on NA V AID Outages .............................. 1−1−20

1−1−14. LORAN ............................................................ 1−1−21

1−1−15. Inertial Reference Unit (IRU), Inertial Navigation System (INS), and Attitude

Heading Reference System (AHRS) .................................... 1−1−21

1−1−16. Doppler Radar ....................................................... 1−1−22

1−1−17. Global Positioning System (GPS) ........................................ 1−1−22

1−1−18. Wide Area Augmentation System (W AAS) ................................ 1−1−34

1−1−19. Ground Based Augmentation System (GBAS) Landing System (GLS) .......... 1−1−39

1−1−20. Precision Approach Systems other than ILS and GLS ........................ 1−1−41

Section 2. Performance-Based Navigation (PBN) and Area Navigation

(RNAV)

1−2−1. General .............................................................. 1−2−1

1−2−2. Required Navigation Performance (RNP) ................................... 1−2−5

1−2−3. Use of Suitable Area Navigation (RNA V) Systems on Conventional Procedures and

Routes .............................................................. 1−2−8

1−2−4. Recognizing, Mitigating, and Adapting to GPS Jamming and/or Spoofing ......... 1−2−10

Chapter 2. Aeronautical Lighting and Other Airport Visual

Aids

Section 1. Airport Lighting Aids

2−1−1. Approach Light Systems (ALS) .......................................... 2−1−1

2−1−2. Visual Glideslope Indicators ............................................. 2−1−1

2−1−3. Runway End Identifier Lights (REIL) ..................................... 2−1−6

2−1−4. Runway Edge Light Systems ............................................ 2−1−6

2−1−5. In−runway Lighting .................................................... 2−1−6

2−1−6. Runway Status Light (RWSL) System ..................................... 2−1−7

2−1−7. Control of Lighting Systems ............................................. 2−1−9

2−1−8. Pilot Control of Airport Lighting ......................................... 2−1−9

2−1−9. Airport/Heliport Beacons ............................................... 2−1−12

Table of Contents i

AIM 7/9/26

Paragraph Page

2−1−10. Taxiway Lights ...................................................... 2−1−13

Section 2. Air Navigation and Obstruction Lighting

2−2−1. Aeronautical Light Beacons ............................................. 2−2−1

2−2−2. Code Beacons and Course Lights ......................................... 2−2−1

2−2−3. Obstruction Lights ..................................................... 2−2−1

2−2−4. LED Lighting Systems ................................................. 2−2−2

Section 3. Airport Marking Aids and Signs

2−3−1. General .............................................................. 2−3−1

2−3−2. Airport Pavement Markings ............................................. 2−3−1

2−3−3. Runway Markings ..................................................... 2−3−1

2−3−4. Taxiway Markings ..................................................... 2−3−7

2−3−5. Holding Position Markings .............................................. 2−3−14

2−3−6. Other Markings ....................................................... 2−3−19

2−3−7. Airport Signs ......................................................... 2−3−24

2−3−8. Mandatory Instruction Signs ............................................. 2−3−25

2−3−9. Location Signs ........................................................ 2−3−28

2−3−10. Direction Signs ...................................................... 2−3−30

2−3−11. Destination Signs ..................................................... 2−3−32

2−3−12. Information Signs .................................................... 2−3−35

2−3−13. Runway Distance Remaining Signs ...................................... 2−3−35

2−3−14. Aircraft Arresting Systems ............................................. 2−3−35

2−3−15. Security Identification Display Area (SIDA) ............................... 2−3−36

Chapter 3. Airspace

Section 1. General

3−1−1. General .............................................................. 3−1−1

3−1−2. General Dimensions of Airspace Segments ................................. 3−1−1

3−1−3. Hierarchy of Overlapping Airspace Designations ............................ 3−1−1

3−1−4. Basic VFR Weather Minimums .......................................... 3−1−2

3−1−5. VFR Cruising Altitudes and Flight Levels .................................. 3−1−3

Section 2. Controlled Airspace

3−2−1. General .............................................................. 3−2−1

3−2−2. Class A Airspace ...................................................... 3−2−2

3−2−3. Class B Airspace ...................................................... 3−2−2

3−2−4. Class C Airspace ...................................................... 3−2−5

3−2−5. Class D Airspace ...................................................... 3−2−8

3−2−6. Class E Airspace ...................................................... 3−2−10

Section 3. Class G Airspace

3−3−1. General .............................................................. 3−3−1

3−3−2. VFR Requirements .................................................... 3−3−1

3−3−3. IFR Requirements ..................................................... 3−3−1

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Section 4. Special Use Airspace

Paragraph Page

3−4−1. General .............................................................. 3−4−1

3−4−2. Prohibited Areas ...................................................... 3−4−1

3−4−3. Restricted Areas ....................................................... 3−4−1

3−4−4. Warning Areas ........................................................ 3−4−2

3−4−5. Military Operations Areas ............................................... 3−4−2

3−4−6. Alert Areas ........................................................... 3−4−2

3−4−7. Controlled Firing Areas ................................................. 3−4−2

3−4−8. National Security Areas ................................................. 3−4−3

3−4−9. Obtaining Special Use Airspace Status ..................................... 3−4−3

Section 5. Other Airspace Areas

3−5−1. Airport Advisory/Information Services ..................................... 3−5−1

3−5−2. Military Training Routes ................................................ 3−5−1

3−5−3. Temporary Flight Restrictions ............................................ 3−5−3

3−5−4. Parachute Jump Aircraft Operations ....................................... 3−5−5

3−5−5. Published VFR Routes .................................................. 3−5−5

3−5−6. Terminal Radar Service Area (TRSA) ..................................... 3−5−9

3−5−7. Special Air Traffic Rules (SA TR) and Special Flight Rules Area (SFRA) ......... 3−5−10

3−5−8. Washington, DC, Special Flight Rules Area (SFRA) including the Flight Restricted

Zone (FRZ) ......................................................... 3−5−10

3−5−9. Weather Reconnaissance Area (WRA) ..................................... 3−5−10

3−5−10. Other Non−Charted Airspace Areas ...................................... 3−5−11

Chapter 4. Air Traffic Control

Section 1. Services Available to Pilots

4−1−1. Air Route Traffic Control Centers ......................................... 4−1−1

4−1−2. Control Towers ....................................................... 4−1−1

4−1−3. Flight Service Stations .................................................. 4−1−1

4−1−4. Recording and Monitoring .............................................. 4−1−1

4−1−5. Communications Release of IFR Aircraft Landing at an Airport Without an

Operating Control Tower .............................................. 4−1−1

4−1−6. Pilot Visits to Air Traffic Facilities ........................................ 4−1−1

4−1−7. Operation Rain Check .................................................. 4−1−2

4−1−8. Approach Control Service for VFR Arriving Aircraft ......................... 4−1−2

4−1−9. Traffic Advisory Practices at Airports Without Operating Control Towers ......... 4−1−2

4−1−10. IFR Approaches/Ground V ehicle Operations ............................... 4−1−7

4−1−11. Designated UNICOM/MULTICOM Frequencies ............................ 4−1−8

4−1−12. Use of UNICOM for A TC Purposes ...................................... 4−1−9

4−1−13. Automatic Terminal Information Service (A TIS) ............................ 4−1−9

4−1−14. Automatic Flight Information Service (AFIS) − Alaska FSSs Only ............. 4−1−10

4−1−15. Radar Traffic Information Service ....................................... 4−1−11

4−1−16. Safety Alert ......................................................... 4−1−13

4−1−17. Radar Assistance to VFR Aircraft ........................................ 4−1−14

4−1−18. Terminal Radar Services for VFR Aircraft ................................. 4−1−15

4−1−19. Tower En Route Control (TEC) ......................................... 4−1−17

4−1−20. Transponder and ADS−B Out Operation .................................. 4−1−18

4−1−21. Airport Reservation Operations and Special Traffic Management Programs ...... 4−1−22

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Paragraph Page

4−1−22. Requests for Waivers and Authorizations from Title 14, Code of Federal Regulations

(14 CFR) ........................................................... 4−1−23

4−1−23. Weather Systems Processor ............................................. 4−1−23

Section 2. Radio Communications Phraseology

and Techniques

4−2−1. General .............................................................. 4−2−1

4−2−2. Radio Technique ...................................................... 4−2−1

4−2−3. Contact Procedures .................................................... 4−2−2

4−2−4. Aircraft Call Signs ..................................................... 4−2−3

4−2−5. Description of Interchange or Leased Aircraft ............................... 4−2−5

4−2−6. Ground Station Call Signs ............................................... 4−2−5

4−2−7. Phonetic Alphabet ..................................................... 4−2−6

4−2−8. Figures .............................................................. 4−2−7

4−2−9. Altitudes and Flight Levels .............................................. 4−2−7

4−2−10. Directions ........................................................... 4−2−7

4−2−11. Speeds ............................................................. 4−2−8

4−2−12. Time ............................................................... 4−2−8

4−2−13. Communications with Tower when Aircraft Transmitter or Receiver or Both are

Inoperative ......................................................... 4−2−9

4−2−14. Communications for VFR Flights ........................................ 4−2−9

Section 3. Airport Operations

4−3−1. General .............................................................. 4−3−1

4−3−2. Airports with an Operating Control Tower .................................. 4−3−1

4−3−3. Traffic Patterns ....................................................... 4−3−3

4−3−4. Visual Indicators at Airports Without an Operating Control Tower ............... 4−3−6

4−3−5. Unexpected Maneuvers in the Airport Traffic Pattern ......................... 4−3−7

4−3−6. Use of Runways/Declared Distances ...................................... 4−3−8

4−3−7. Low Level Wind Shear/Microburst Detection Systems ........................ 4−3−12

4−3−8. Braking Action Reports and Advisories .................................... 4−3−13

4−3−9. Runway Condition Reports .............................................. 4−3−13

4−3−10. Intersection Takeoffs .................................................. 4−3−15

4−3−11. Pilot Responsibilities When Conducting Land and Hold Short Operations

(LAHSO) ........................................................... 4−3−16

4−3−12. Low Approach ....................................................... 4−3−19

4−3−13. Traffic Control Light Signals ........................................... 4−3−19

4−3−14. Communications ..................................................... 4−3−20

4−3−15. Gate Holding Due to Departure Delays ................................... 4−3−21

4−3−16. VFR Flights in Terminal Areas .......................................... 4−3−21

4−3−17. VFR Helicopter Operations at Controlled Airports .......................... 4−3−21

4−3−18. Taxiing ............................................................. 4−3−23

4−3−19. Taxi During Low Visibility ............................................. 4−3−25

4−3−20. Standard Taxi Routes .................................................. 4−3−26

4−3−21. Exiting the Runway After Landing ....................................... 4−3−26

4−3−22. Practice Instrument Approaches ......................................... 4−3−27

4−3−23. Option Approach ..................................................... 4−3−28

4−3−24. Use of Aircraft Lights ................................................. 4−3−29

4−3−25. Flight Inspection/‘Flight Check’ Aircraft in Terminal Areas ................... 4−3−29

4−3−26. Hand Signals ........................................................ 4−3−30

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Paragraph Page

4−3−27. Operations at Uncontrolled Airports With Automated Surface Observing System

(ASOS)/Automated Weather Observing System (AWOS) .................... 4−3−37

Section 4. ATC Clearances and Aircraft Separation

4−4−1. Clearance ............................................................ 4−4−1

4−4−2. Clearance Prefix ...................................................... 4−4−1

4−4−3. Clearance Items ....................................................... 4−4−1

4−4−4. Amended Clearances ................................................... 4−4−3

4−4−5. Coded Departure Route (CDR) ........................................... 4−4−3

4−4−6. Special VFR Clearances ................................................ 4−4−3

4−4−7. Pilot Responsibility upon Clearance Issuance ............................... 4−4−4

4−4−8. IFR Clearance VFR−on−top ............................................. 4−4−5

4−4−9. VFR/IFR Flights ...................................................... 4−4−6

4−4−10. Adherence to Clearance ............................................... 4−4−6

4−4−11. IFR Separation Standards .............................................. 4−4−8

4−4−12. Speed Adjustments ................................................... 4−4−8

4−4−13. Runway Separation ................................................... 4−4−11

4−4−14. Visual Separation ..................................................... 4−4−11

4−4−15. Use of Visual Clearing Procedures and Scanning Techniques .................. 4−4−12

4−4−16. Traffic Alert and Collision Avoidance System (TCAS I & II) .................. 4−4−13

4−4−17. Traffic Information Service (TIS) ........................................ 4−4−14

Section 5. Surveillance Systems

4−5−1. Radar ............................................................... 4−5−1

4−5−2. Air Traffic Control Radar Beacon System (A TCRBS) ......................... 4−5−3

4−5−3. Surveillance Radar .................................................... 4−5−4

4−5−4. Precision Approach Radar (PAR) ......................................... 4−5−4

4−5−5. Airport Surface Detection Equipment (ASDE −X)/Airport Surface Surveillance

Capability (ASSC) .................................................... 4−5−4

4−5−6. Traffic Information Service (TIS) ......................................... 4−5−5

4−5−7. Automatic Dependent Surveillance −Broadcast (ADS−B) Services ............... 4−5−12

4−5−8. Traffic Information Service − Broadcast (TIS−B) ............................. 4−5−17

4−5−9. Flight Information Service − Broadcast (FIS−B) .............................. 4−5−18

4−5−10. Automatic Dependent Surveillance −Rebroadcast (ADS−R) ................... 4−5−21

Section 6. Operational Policy/Procedures for Reduced Vertical

Separation Minimum (RVSM) in the Domestic U.S., Alaska, Offshore

Airspace and the San Juan FIR

4−6−1. Applicability and RVSM Mandate (Date/Time and Area) ...................... 4−6−1

4−6−2. Flight Level Orientation Scheme ......................................... 4−6−1

4−6−3. Aircraft and Operator Approval Policy/Procedures, RVSM Monitoring and

Databases for Aircraft and Operator Approval .............................. 4−6−2

4−6−4. Flight Planning into RVSM Airspace ...................................... 4−6−3

4−6−5. Pilot RVSM Operating Practices and Procedures ............................. 4−6−4

4−6−6. Guidance on Severe Turbulence and Mountain Wave Activity (MW A) ........... 4−6−4

4−6−7. Guidance on Wake Turbulence ........................................... 4−6−6

4−6−8. Pilot/Controller Phraseology ............................................. 4−6−6

4−6−9. Contingency Actions: Weather Encounters and Aircraft System Failures that

Occur After Entry into RVSM Airspace ................................... 4−6−7

4−6−10. Procedures for Accommodation of Non −RVSM Aircraft ...................... 4−6−9

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Paragraph Page

4−6−11. Non− RVSM Aircraft Requesting Climb to and Descent from Flight Levels Above

RVSM Airspace Without Intermediate Level Off ........................... 4−6−10

Section 7. Operational Policy/Procedures for the Gulf of America 50 NM

Lateral Separation Initiative

4−7−1. Introduction and General Policies ......................................... 4−7−1

4−7−2. Accommodating Non−RNP 10 Aircraft .................................... 4−7−1

4−7−3. Obtaining RNP 10 or RNP 4 Operational Authorization ....................... 4−7−1

4−7−4. Authority for Operations with a Single Long −Range Navigation System .......... 4−7−2

4−7−5. Flight Plan Requirements ............................................... 4−7−2

4−7−6. Contingency Procedures ................................................ 4−7−2

Chapter 5. Air Traffic Procedures

Section 1. Preflight

5−1−1. Preflight Preparation ................................................... 5−1−1

5−1−2. Follow IFR Procedures Even When Operating VFR .......................... 5−1−2

5−1−3. Notice to Airmen (NOTAM) System ...................................... 5−1−3

5−1−4. Operational Information System (OIS) ..................................... 5−1−9

5−1−5. Flight Plan − VFR Flights ............................................... 5−1−10

5−1−6. Flight Plan − IFR Flights ................................................ 5−1−11

5−1−7. Flight Plans For Military/DoD Use Only ................................... 5−1−15

5−1−8. Flight Plan – Defense VFR (DVFR) Flights ................................. 5−1−15

5−1−9. Single Flights Conducted With Both VFR and IFR Flight Plans ................. 5−1−16

5−1−10. IFR Operations to High Altitude Destinations .............................. 5−1−16

5−1−11. Flights Outside U.S. Territorial Airspace .................................. 5−1−17

5−1−12. Change in Flight Plan ................................................. 5−1−18

5−1−13. Change in Proposed Departure Time ..................................... 5−1−18

5−1−14. Closing VFR/DVFR Flight Plans ........................................ 5−1−18

5−1−15. Canceling IFR Flight Plan .............................................. 5−1−18

5−1−16. RNA V and RNP Operations ............................................ 5−1−19

5−1−17. Cold Temperature Operations ........................................... 5−1−20

Section 2. Departure Procedures

5−2−1. Pre-taxi Clearance Procedures ........................................... 5−2−1

5−2−2. Automated Pre−Departure Clearance Procedures ............................. 5−2−1

5−2−3. IFR Clearances Off Uncontrolled Airports .................................. 5−2−2

5−2−4. Taxi Clearance ........................................................ 5−2−2

5−2−5. Line Up and Wait (LUAW) .............................................. 5−2−2

5−2−6. Abbreviated IFR Departure Clearance (Cleared. . .as Filed) Procedures ........... 5−2−4

5−2−7. Departure Restrictions, Clearance V oid Times, Hold for Release, and Release

Times ............................................................... 5−2−5

5−2−8. Departure Control ..................................................... 5−2−6

5−2−9. Instrument Departure Procedures (DP) − Obstacle Departure Procedures

(ODP), Standard Instrument Departures (SID), and Diverse V ector Areas

(DV A) .............................................................. 5−2−7

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Section 3. En Route Procedures

Paragraph Page

5−3−1. ARTCC Communications ............................................... 5−3−1

5−3−2. Position Reporting ..................................................... 5−3−17

5−3−3. Additional Reports ..................................................... 5−3−19

5−3−4. Airways and Route Systems ............................................. 5−3−20

5−3−5. Airway or Route Course Changes ......................................... 5−3−22

5−3−6. Changeover Points (COPs) .............................................. 5−3−23

5−3−7. Minimum Turning Altitude (MTA) ........................................ 5−3−23

5−3−8. Holding ............................................................. 5−3−24

Section 4. Arrival Procedures

5−4−1. Standard Terminal Arrival (STAR) Procedures .............................. 5−4−1

5−4−2. Local Flow Traffic Management Program .................................. 5−4−3

5−4−3. Approach Control ..................................................... 5−4−4

5−4−4. Advance Information on Instrument Approach .............................. 5−4−5

5−4−5. Instrument Approach Procedure (IAP) Charts ............................... 5−4−5

5−4−6. Approach Clearance ................................................... 5−4−28

5−4−7. Instrument Approach Procedures ......................................... 5−4−30

5−4−8. Special Instrument Approach Procedures ................................... 5−4−32

5−4−9. Procedure Turn and Hold−in−lieu of Procedure Turn .......................... 5−4−33

5−4−10. Timed Approaches from a Holding Fix ................................... 5−4−36

5−4−11. Radar Approaches .................................................... 5−4−38

5−4−12. Radar Monitoring of Instrument Approaches ............................... 5−4−39

5−4−13. Simultaneous Approaches to Parallel Runways ............................. 5−4−40

5−4−14. Simultaneous Dependent Approaches ..................................... 5−4−42

5−4−15. Simultaneous Independent ILS/RNA V/GLS Approaches ...................... 5−4−44

5−4−16. Simultaneous Close Parallel PRM Approaches and Simultaneous Offset

Instrument Approaches (SOIA) ......................................... 5−4−46

5−4−17. Simultaneous Converging Instrument Approaches ........................... 5−4−53

5−4−18. RNP AR (Authorization Required) Instrument Procedures .................... 5−4−53

5−4−19. Side−step Maneuver .................................................. 5−4−55

5−4−20. Approach and Landing Minimums ....................................... 5−4−55

5−4−21. Missed Approach ..................................................... 5−4−58

5−4−22. Use of Enhanced Flight Vision Systems (EFVS) on Instrument Approaches ...... 5−4−61

5−4−23. Visual Approach ..................................................... 5−4−65

5−4−24. Charted Visual Flight Procedure (CVFP) .................................. 5−4−66

5−4−25. Contact Approach .................................................... 5−4−66

5−4−26. Landing Priority ...................................................... 5−4−67

5−4−27. Overhead Approach Maneuver .......................................... 5−4−67

Section 5. Pilot/Controller Roles and Responsibilities

5−5−1. General .............................................................. 5−5−1

5−5−2. Air Traffic Clearance ................................................... 5−5−1

5−5−3. Contact Approach ..................................................... 5−5−2

5−5−4. Instrument Approach ................................................... 5−5−2

5−5−5. Missed Approach ...................................................... 5−5−3

5−5−6. V ectors .............................................................. 5−5−4

5−5−7. Safety Alert .......................................................... 5−5−4

5−5−8. See and Avoid ........................................................ 5−5−5

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Paragraph Page

5−5−9. Speed Adjustments .................................................... 5−5−5

5−5−10. Traffic Advisories (Traffic Information) ................................... 5−5−6

5−5−11. Visual Approach ..................................................... 5−5−6

5−5−12. Visual Separation ..................................................... 5−5−7

5−5−13. VFR-on-top ......................................................... 5−5−8

5−5−14. Instrument Departures ................................................. 5−5−8

5−5−15. Minimum Fuel Advisory ............................................... 5−5−9

5−5−16. RNA V and RNP Operations ............................................ 5−5−9

Section 6. National Security and Interception Procedures

5−6−1. National Security ...................................................... 5−6−1

5−6−2. National Security Requirements .......................................... 5−6−1

5−6−3. Definitions ........................................................... 5−6−1

5−6−4. ADIZ Requirements ................................................... 5−6−2

5−6−5. Civil Aircraft Operations To or From U.S. Territorial Airspace ................. 5−6−4

5−6−6. Civil Aircraft Operations Within U.S. Territorial Airspace ..................... 5−6−4

5−6−7. Civil Aircraft Operations Transiting U.S. Territorial Airspace .................. 5−6−5

5−6−8. Foreign State Aircraft Operations ......................................... 5−6−6

5−6−9. FAA/TSA Airspace Waivers ............................................. 5−6−8

5−6−10. TSA Aviation Security Programs ........................................ 5−6−8

5−6−11. FAA Flight Routing Authorizations ...................................... 5−6−8

5−6−12. Emergency Security Control of Air Traffic (ESCA T) ........................ 5−6−8

5−6−13. Interception Procedures ................................................ 5−6−9

5−6−14. Interception Signals ................................................... 5−6−11

5−6−15. ADIZ Boundaries and Designated Mountainous Areas (See FIG 5 −6−3.) ......... 5−6−14

5−6−16. Visual Warning System (VWS) .......................................... 5−6−15

Chapter 6. Emergency Procedures

Section 1. General

6−1−1. Pilot Responsibility and Authority ........................................ 6−1−1

6−1−2. Emergency Condition − Request Assistance Immediately ...................... 6−1−1

Section 2. Emergency Services Available to Pilots

6−2−1. Radar Service for VFR Aircraft in Difficulty ................................ 6−2−1

6−2−2. Transponder Emergency Operation ........................................ 6−2−1

6−2−3. Intercept and Escort .................................................... 6−2−1

6−2−4. Emergency Locator Transmitter (ELT) ..................................... 6−2−2

6−2−5. FAA K−9 Explosives Detection Team Program .............................. 6−2−4

6−2−6. Search and Rescue ..................................................... 6−2−4

Section 3. Distress and Urgency Procedures

6−3−1. Distress and Urgency Communications .................................... 6−3−1

6−3−2. Obtaining Emergency Assistance ......................................... 6−3−1

6−3−3. Ditching Procedures ................................................... 6−3−3

6−3−4. Special Emergency (Air Piracy) .......................................... 6−3−7

6−3−5. Fuel Dumping ........................................................ 6−3−8

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Section 4. T wo‐way Radio Communications Failure

Paragraph Page

6−4−1. Two-way Radio Communications Failure ................................... 6−4−1

6−4−2. Transponder Operation During Two-way Communications Failure .............. 6−4−2

6−4−3. Reestablishing Radio Contact ............................................ 6−4−2

Section 5. Aircraft Rescue and Fire Fighting Communications

6−5−1. Discrete Emergency Frequency ........................................... 6−5−1

6−5−2. Radio Call Signs ...................................................... 6−5−1

6−5−3. ARFF Emergency Hand Signals .......................................... 6−5−1

Chapter 7. Safety of Flight

Section 1. Meteorology

7−1−1. National Weather Service Aviation Weather Service Program .................. 7−1−1

7−1−2. FAA Weather Services .................................................. 7−1−2

7−1−3. Use of Aviation Weather Products ........................................ 7−1−3

7−1−4. Graphical Forecasts for Aviation (GFA) .................................... 7−1−6

7−1−5. Preflight Briefing ...................................................... 7−1−8

7−1−6. Inflight Aviation Weather Advisories ...................................... 7−1−11

7−1−7. Categorical Ceiling and Visibility Conditions ............................... 7−1−22

7−1−8. Inflight Weather Advisory Broadcasts ..................................... 7−1−22

7−1−9. Flight Information Services (FIS) ......................................... 7−1−23

7−1−10. Weather Observing Programs ........................................... 7−1−27

7−1−11. Weather Radar Services ................................................ 7−1−36

7−1−12. A TC Inflight Weather Avoidance Assistance ............................... 7−1−40

7−1−13. Runway Visual Range (RVR) ........................................... 7−1−42

7−1−14. Reporting of Cloud Heights ............................................ 7−1−43

7−1−15. Reporting Prevailing Visibility .......................................... 7−1−44

7−1−16. Estimating Intensity of Rain and Ice Pellets ................................ 7−1−44

7−1−17. Estimating Intensity of Snow or Drizzle (Based on Visibility) ................. 7−1−44

7−1−18. Pilot Weather Reports (PIREPs) ......................................... 7−1−44

7−1−19. PIREPs Relating to Airframe Icing ....................................... 7−1−46

7−1−20. Definitions of Inflight Icing Terms ....................................... 7−1−47

7−1−21. PIREPs Relating to Turbulence .......................................... 7−1−48

7−1−22. Wind Shear PIREPs ................................................... 7−1−49

7−1−23. Clear Air Turbulence (CA T) PIREPs ..................................... 7−1−50

7−1−24. Microbursts ......................................................... 7−1−50

7−1−25. PIREPs Relating to V olcanic Ash Activity ................................. 7−1−61

7−1−26. Thunderstorms ....................................................... 7−1−62

7−1−27. Thunderstorm Flying .................................................. 7−1−62

7−1−28. Key to Aerodrome Forecast (TAF) and Aviation Routine Weather Report (METAR) 7 −1−65

7−1−29. International Civil Aviation Organization (ICAO) Weather Formats ............. 7−1−67

Section 2. Barometric Altimeter Errors and Setting Procedures

7−2−1. General .............................................................. 7−2−1

7−2−2. Barometric Pressure Altimeter Errors ...................................... 7−2−1

7−2−3. Altimeter Errors ....................................................... 7−2−1

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Section 3. Cold Temperature Barometric Altimeter Errors, Setting

Procedures and Cold Temperature Airports (CTA)

Paragraph Page

7−3−1. Effect of Cold Temperature on Barometric Altimeters ........................ 7−3−1

7−3−2. Pre−Flight Planning for Cold Temperature Altimeter Errors .................... 7−3−1

7−3−3. Effects of Cold Temperature on Baro −V ertical Navigation (VNA V) V ertical

Guidance ............................................................ 7−3−1

7−3−4. Cold Temperature Airports (CTA) ........................................ 7−3−2

7−3−5. Cold Temperature Airport Procedures ..................................... 7−3−3

7−3−6. Examples for Calculating Altitude Corrections on CTAs ....................... 7−3−6

Section 4. Wake T urbulence

7−4−1. General .............................................................. 7−4−1

7−4−2. V ortex Generation ..................................................... 7−4−1

7−4−3. V ortex Strength ....................................................... 7−4−1

7−4−4. V ortex Behavior ....................................................... 7−4−2

7−4−5. Operations Problem Areas ............................................... 7−4−5

7−4−6. V ortex Avoidance Procedures ............................................ 7−4−6

7−4−7. Helicopters ........................................................... 7−4−6

7−4−8. Pilot Responsibility .................................................... 7−4−7

7−4−9. Air Traffic Wake Turbulence Separations ................................... 7−4−8

Section 5. Bird Hazards and Flight Over National Refuges, Parks, and

Forests

7−5−1. Migratory Bird Activity ................................................. 7−5−1

7−5−2. Reducing Bird Strike Risks .............................................. 7−5−1

7−5−3. Reporting Bird Strikes .................................................. 7−5−1

7−5−4. Reporting Bird and Other Wildlife Activities ................................ 7−5−1

7−5−5. Pilot Advisories on Bird and Other Wildlife Hazards ......................... 7−5−2

7−5−6. Flights Over Charted U.S. Wildlife Refuges, Parks, and Forest Service Areas ...... 7−5−2

Section 6. Potential Flight Hazards

7−6−1. Accident Causal Factors ................................................ 7−6−1

7−6−2. Reporting Radio/Radar Altimeter Anomalies ................................ 7−6−1

7−6−3. VFR in Congested Areas ................................................ 7−6−2

7−6−4. Obstructions To Flight .................................................. 7−6−2

7−6−5. Avoid Flight Beneath Unmanned Balloons .................................. 7−6−4

7−6−6. Unmanned Aircraft Systems ............................................. 7−6−4

7−6−7. Mountain Flying ...................................................... 7−6−5

7−6−8. Use of Runway Half−way Signs at Unimproved Airports ...................... 7−6−7

7−6−9. Seaplane Safety ....................................................... 7−6−8

7−6−10. Flight Operations in V olcanic Ash ....................................... 7−6−9

7−6−11. Emergency Airborne Inspection of Other Aircraft ........................... 7−6−10

7−6−12. Precipitation Static ................................................... 7−6−11

7−6−13. Light Amplification by Stimulated Emission of Radiation (Laser) Operations and

Reporting Illumination of Aircraft ...................................... 7−6−12

7−6−14. Flying in Flat Light, Brown Out Conditions, and White Out Conditions ......... 7−6−13

7−6−15. Operations in Ground Icing Conditions ................................... 7−6−15

7−6−16. Avoid Flight in the Vicinity of Exhaust Plumes (Smoke Stacks and Cooling Towers) 7 −6−16

Table of Contents x

7/9/26 AIM

Paragraph Page

7−6−17. Space Launch and Reentry Area ......................................... 7−6−17

7−6−18. Automatic Landing Operations .......................................... 7−6−18

Section 7. Safety, Accident, and Hazard Reports

7−7−1. Aviation Safety Reporting Program ....................................... 7−7−1

7−7−2. Aircraft Accident and Incident Reporting ................................... 7−7−1

7−7−3. Near Midair Collision Reporting .......................................... 7−7−3

7−7−4. Unidentified Anomalous Phenomena (UAP) Reports ......................... 7−7−3

7−7−5. Safety Alerts For Operators (SAFO) and Information For Operators (InFO) ....... 7−7−4

Chapter 8. Medical Facts for Pilots

Section 1. Fitness for Flight

8−1−1. Fitness For Flight ...................................................... 8−1−1

8−1−2. Effects of Altitude ..................................................... 8−1−3

8−1−3. Hyperventilation in Flight ............................................... 8−1−5

8−1−4. Carbon Monoxide Poisoning in Flight ..................................... 8−1−5

8−1−5. Illusions in Flight ...................................................... 8−1−5

8−1−6. Vision in Flight ....................................................... 8−1−7

8−1−7. Aerobatic Flight ....................................................... 8−1−8

8−1−8. Judgment Aspects of Collision Avoidance .................................. 8−1−9

Chapter 9. Aeronautical Charts and

Related Publications

Section 1. T ypes of Charts Available

9−1−1. General .............................................................. 9−1−1

9−1−2. Obtaining Aeronautical Charts ........................................... 9−1−1

9−1−3. Safety Alerts, Charting Notices, and Data Product Notices ..................... 9−1−1

9−1−4. Selected Charts and Products Available .................................... 9−1−1

9−1−5. General Description of Each Chart Series .................................. 9−1−1

9−1−6. Where and How to Get Charts of Foreign Areas ............................. 9−1−14

Chapter 10. Helicopter Operations

Section 1. Helicopter IFR Operations

10−1−1. Helicopter Flight Control Systems ....................................... 10−1−1

10−1−2. Helicopter Instrument Approaches ....................................... 10−1−2

10−1−3. Helicopter Approach Procedures to VFR Heliports .......................... 10−1−4

10−1−4. The Gulf of America Grid System ....................................... 10−1−5

10−1−5. Departure Procedures ................................................. 10−1−7

Section 2. Special Operations

10−2−1. Offshore Helicopter Operations ......................................... 10−2−1

10−2−2. Helicopter Night VFR Operations ........................................ 10−2−8

10−2−3. Landing Zone Safety .................................................. 10−2−12

10−2−4. Emergency Medical Service (EMS) Multiple Helicopter Operations ............ 10−2−18

Table of Contents xi

AIM 7/9/26

Chapter 11. Unmanned Aircraft Systems (UAS)

Section 1. General

11−1−1. General ............................................................. 11−1−1

11−1−2. Access to the National Airspace System (NAS) for UAS Operators ............. 11−1−1

Section 2. Small Unmanned Aircraft System (sUAS)

11−2−1. Part 107 sUAS and Recreational Flyers ................................... 11−2−1

11−2−2. Registration Requirements ............................................. 11−2−1

Section 3. Large UAS (MGOW 55 Pounds or More)

11−3−1. Large Public UAS Operations ........................................... 11−3−1

11−3−2. Exemptions Under 49 USC 44807, Special Authority for Certain Unmanned

Systems ............................................................ 11−3−4

11−3−3. Emerging Large UAS Civil Operations .................................... 11−3−5

Section 4. Airspace Access for UAS

11−4−1. Recreational Flyers ................................................... 11−4−1

11−4−2. 14 CFR part 107 and Waivers to 14 CFR part 107 ........................... 11−4−1

11−4−3. Airspace Access for Public Aircraft Operations (PAOs) ....................... 11−4−2

11−4−4. 14 CFR part 89 Remote Identification and FAA −Recognized Identification

Areas (FRIAs) ...................................................... 11−4−3

11−4−5. Airspace Access for 14 CFR part 135 and 14 CFR part 137 ................... 11−4−4

11−4−6. Airspace Restrictions To Flight .......................................... 11−4−6

11−4−7. UAS Traffic Management (UTM) ........................................ 11−4−8

Section 5. UAS Pilot Testing, Certification and Responsibilities

11−5−1. UAS Pilot Certification and Requirements for Part 107 and Recreational Flyers ... 11−5−1

11−5−2. Pilot Certification and Requirements for Public Aircraft Operations (PAOs) ...... 11−5−3

11−5−3. Pilot Certification for 14 CFR part 135, Part 137, and Large Civil UAS .......... 11−5−3

11−5−4. Foreign Pilot Certification .............................................. 11−5−3

Section 6. Advanced Air Mobility

11−6−1. General ............................................................. 11−6−1

Section 7. UAS Operations on Airports

11−7−1. UAS Operations on Airports ............................................ 11−7−1

Section 8. Other Information and Best Practices

11−8−1. Best Practices for UAS Operations ....................................... 11−8−1

11−8−2. UAS Operations and Air Traffic Control (A TC) ............................. 11−8−1

11−8−3. Precautions: Flight Over or Near People, V ehicles, Manned Aircraft, and Night

Operations ......................................................... 11−8−1

11−8−4. Accidents and Incidents: UAS Operator Responsibilities ...................... 11−8−2

11−8−5. Emergency UAS Authorizations Through Special Government Interest (SGI) Airspace

Waivers ............................................................ 11−8−3

11−8−6. Environmental Best Practices ........................................... 11−8−3

11−8−7. Resources for UAS Operators ........................................... 11−8−4

Table of Contents xii

7/9/26 AIM

Paragraph Page

Appendix 1. Bird/Other Wildlife Strike Report .................. Appendix 1−1

Appendix 2. V olcanic Activity Reporting Form (V AR) ............ Appendix 2−1

Appendix 3. Abbreviations/Acronyms ......................... Appendix 3−1

Appendix 4. FAA Form 7233−4 − International Flight Plan ........ Appendix 4−1

Appendix 5. FAA Form 7233−1 − Flight Plan ................... Appendix 5−1

PILOT/CONTROLLER GLOSSARY ......................... PCG−1

INDEX ................................................. I−1

Table of Contents xiii

2/20/25 AIM

Chapter 1. Air Navigation

Section 1. Navigation Aids

1−1−1. General

a. Various types of air navigation aids are in use today, each serving a special purpose. These aids have varied

owners and operators, namely: the Federal Aviation Administration (FAA), the military services, private

organizations, individual states and foreign governments. The FAA has the statutory authority to establish,

operate, maintain air navigation facilities and to prescribe standards for the operation of any of these aids which

are used for instrument flight in federally controlled airspace. These aids are tabulated in the Chart Supplement.

b. Pilots should be aware of the possibility of momentary erroneous indications on cockpit displays when the

primary signal generator for a ground −based navigational transmitter (for example, a glideslope, VOR, or

nondirectional beacon) is inoperative. Pilots should disregard any navigation indication, regardless of its

apparent validity, if the particular transmitter was identified by NOTAM or otherwise as unusable or inoperative.

1−1−2. Nondirectional Radio Beacon (NDB)

a. A low or medium frequency radio beacon transmits nondirectional signals whereby the pilot of an aircraft

properly equipped can determine bearings and “home” on the station. These facilities normally operate in a

frequency band of 190 to 535 kilohertz (kHz), according to ICAO Annex 10 the frequency range for NDBs is

between 190 and 1750 kHz, and transmit a continuous carrier with either 400 or 1020 hertz (Hz) modulation.

All radio beacons except the compass locators transmit a continuous three−letter identification in code except

during voice transmissions.

b. When a radio beacon is used in conjunction with the Instrument Landing System markers, it is called a

Compass Locator.

c. V oice transmissions are made on radio beacons unless the letter “W” (without voice) is included in the class

designator (HW).

d. Radio beacons are subject to disturbances that ma y result in erroneous bearing information. Such

disturbances result from such factors as lightning, precipitation static, etc. At night, radio beacons are vulnerable

to interference from distant stations. Nearly all disturbances which affect the Automatic Direction Finder (ADF)

bearing also affect the facility’s identification. Noisy identification usually occurs when the ADF needle is

erratic. V oice, music or erroneous identification may be heard when a steady false bearing is being displayed.

Since ADF receivers do not have a “flag” to warn the pilot when erroneous bearing information is being

displayed, the pilot should continuously monitor the NDB’s identification.

1−1−3. VHF Omni −directional Range (VOR)

a. VORs operate within the 108.0 to 117.95 MHz frequency band and have a power output necessary to

provide coverage within their assigned operational service volume. They are subject to line−of−sight restrictions,

and the range varies proportionally to the altitude of the receiving equipment.

NOTE−

Normal service ranges for the various classes of VORs are given in Navigational Aid (NAVAID) Service Volumes, Paragraph

1−1−8.

b. Most VORs are equipped for voice transmission on the VOR frequency. VORs without voice capability

are indicated by the letter “W” (without voice) included in the class designator (VORW).

c. The only positive method of identifying a VOR is by its Morse Code identification or by the recorded

automatic voice identification which is always indicated by use of the word “VOR” following the range’s name.

Navigation Aids 1−1−1

AIM 2/20/25

Reliance on determining the identification of an omnirange should never be placed on listening to voice

transmissions by the Flight Service Station (FSS) (or approach control facility) involved. Many FSSs remotely

operate several omniranges with different names. In some cases, none of the VORs have the name of the “parent”

FSS. During periods of maintenance, the facility may radiate a T−E−S−T code (-   -) or the code may

be removed. Some VOR equipment decodes the identifier and displays it to the pilot for verification to charts,

while other equipment simply displays the expected identifier from a database to aid in verification to the audio

tones. You should be familiar with your equipment and use it appropriately. If your equipment automatically

decodes the identifier, it is not necessary to listen to the audio identification.

d. V oice identification has been added to numerous VORs. The transmission consists of a voice

announcement, “AIRVILLE VOR” alternating with the usual Morse Code identification.

e. The effectiveness of the VOR depends upon proper use and adjustment of both ground and airborne

equipment.

1. Accuracy. The accuracy of course alignment of the VOR is excellent, being generally plus or minus 1

degree.

2. Roughness. On some VORs, minor course roughness may be observed, evidenced by course needle or

brief flag alarm activity (some receivers are more susceptible to these irregularities than others). At a few stations,

usually in mountainous terrain, the pilot may occasionally observe a brief course needle oscillation, similar to

the indication of “approaching station.” Pilots flying over unfamiliar routes are cautioned to be on the alert for

these vagaries, and in particular, to use the “to/from” indicator to determine positive station passage.

(a) Certain propeller revolutions per minute (RPM) settings or helicopter rotor speeds can cause the VOR

Course Deviation Indicator to fluctuate as much as plus or minus six degrees. Slight changes to the RPM setting

will normally smooth out this roughness. Pilots are urged to check for this modulation phenomenon prior to

reporting a VOR station or aircraft equipment for unsatisfactory operation.

f. The VOR Minimum Operational Network (MON). As flight procedures and route structure based on

VORs are gradually being replaced with Performance −Based Navigation (PBN) procedures, the FAA is

removing selected VORs from service. PBN procedures are primarily enabled by GPS and its augmentation

systems, collectively referred to as Global Navigation Satellite System (GNSS). Aircraft that carry DME/DME

equipment can also use RNA V which provides a backup to continue flying PBN during a GNSS disruption. For

those aircraft that do not carry DME/DME, the FAA is retaining a limited network of VORs, called the VOR

MON, to provide a basic conventional navigation service for operators to use if GNSS becomes unavailable.

During a GNSS disruption, the MON will enable aircraft to navigate through the affected area or to a safe landing

at a MON airport without reliance on GNSS. Navigation using the MON will not be as efficient as the new PBN

route structure, but use of the MON will provide nearly continuous VOR signal coverage at 5,000 feet AGL

across the NAS, outside of the Western U.S. Mountainous Area (WUSMA).

NOTE−

There is no plan to change the NAVAID and route structure in the WUSMA.

The VOR MON has been retained principally for IFR aircraft that are not equipped with DME/DME avionics.

However, VFR aircraft may use the MON as desired. Aircraft equipped with DME/DME navigation systems

would, in most cases, use DME/DME to continue flight using RNA V to their destination. However, these aircraft

may, of course, use the MON.

1. Distance to a MON airport. The VOR MON will ensure that regardless of an aircraft’s position in the

contiguous United States (CONUS), a MON airport (equipped with legacy ILS or VOR approaches) will be

within 100 nautical miles. These airports are referred to as “MON airports” and will have an ILS approach or

a VOR approach if an ILS is not available. VORs to support these approaches will be retained in the VOR MON.

MON airports are charted on low−altitude en route charts and are contained in the Chart Supplement U.S. and

other appropriate publications.

NOTE−

Any suitable airport can be used to land in the event of a VOR outage. For example, an airport with a DME−required ILS

1−1−2 Navigation Aids

2/20/25 AIM

approach may be available and could be used by aircraft that are equipped with DME. The intent of the MON airport is to

provide an approach that can be used by aircraft without ADF or DME when radar may not be available.

2. Navigating to an airport. The VOR MON will retain sufficient VORs and increase VOR service volume

to ensure that pilots will have nearly continuous signal reception of a VOR when flying at 5,000 feet AGL. A

key concept of the MON is to ensure that an aircraft will always be within 100 NM of anairport with an instrument

approach that is not dependent on GPS. (See paragraph 1−1−8.) If the pilot encounters a GPS outage, the pilot

will be able to proceed via VOR−to−VOR navigation at 5,000 feet AGL through the GPS outage area or to a safe

landing at a MON airport or another suitable airport, as appropriate. Nearly all VORs inside of the WUSMA and

outside the CONUS are being retained. In these areas, pilots use the existing (Victor and Jet) route structure and

VORs to proceed through a GPS outage or to a landing.

3. Using the VOR MON.

(a) In the case of a planned GPS outage (for example, one that is in a published NOTAM), pilots may

plan to fly through the outage using the MON as appropriate and as cleared by ATC. Similarly, aircraft not

equipped with GPS may plan to fly and land using the MON, as appropriate and as cleared by ATC.

NOTE−

In many cases, flying using the MON may involve a more circuitous route than flying GPS−enabled RNAV .

(b) In the case of an unscheduled GPS outage, pilots and ATC will need to coordinate the best outcome

for all aircraft. It is possible that a GPS outage could be disruptive, causing high workload and demand for ATC

service. Generally, the VOR MON concept will enable pilots to navigate through the GPS outage or land at a

MON airport or at another airport that may have an appropriate approach or may be in visual conditions.

(1) The VOR MON is a reversionary service provided by the FAA for use by aircraft that are unable

to continue RNA V during a GPS disruption. The FAA has not mandated that preflight or inflight planning include

provisions for GPS− or WAAS−equipped aircraft to carry sufficient fuel to proceed to a MON airport in case of

an unforeseen GPS outage. Specifically, flying to a MON airport as a filed alternate will not be explicitly

required. Of course, consideration for the possibility of a GPS outage is prudent during flight planning as is

maintaining proficiency with VOR navigation.

(2) Also, in case of a GPS outage, pilots may coordinate with ATC and elect to continue through the

outage or land. The VOR MON is designed to ensure that an aircraft is within 100 NM of an airport, but pilots

may decide to proceed to any appropriate airport where a landing can be made. WAAS users flying under part

91 are not required to carry VOR avionics. These users do not have the ability or requirement to use the VOR

MON. Prudent flight planning, by these WAAS−only aircraft, should consider the possibility of a GPS outage.

NOTE−

The F AA recognizes that non−GPS−based approaches will be reduced when VORs are eliminated, and that most airports

with an instrument approach may only have GPS− or WAAS−based approaches. Pilots flying GPS− or WAAS−equipped

aircraft that also have VOR/ILS avionics should be diligent to maintain proficiency in VOR and ILS approaches in the event

of a GPS outage.

1−1−4. VOR Receiver Check

a. The FAA VOR test facility (VOT) transmits a test signal which provides users a convenient means to

determine the operational status and accuracy of a VOR receiver while on the ground where a VOT is located.

The airborne use of VOT is permitted; however, its use is strictly limited to those areas/altitudes specifically

authorized in the Chart Supplement or appropriate supplement.

b. To use the VOT service, tune in the VOT frequency on your VOR receiver. With the Course Deviation

Indicator (CDI) centered, the omni−bearing selector should read 0 degrees with the to/from indication showing

“from” or the omni−bearing selector should read 180 degrees with the to/from indication showing “to.” Should

the VOR receiver operate an RMI (Radio Magnetic Indicator), it will indicate 180 degrees on any omni−bearing

selector (OBS) setting. Two means of identification are used. One is a series of dots and the other is a continuous

tone. Information concerning an individual test signal can be obtained from the local FSS.

Navigation Aids 1−1−3

AIM 2/20/25

c. Periodic VOR receiver calibration is most important. If a receiver’s Automatic Gain Control or modulation

circuit deteriorates, it is possible for it to display acceptable accuracy and sensitivity close into the VOR or VOT

and display out−of−tolerance readings when located at greater distances where weaker signal areas exist. The

likelihood of this deterioration varies between receivers, and is generally considered a function of time. The best

assurance of having an accurate receiver is periodic calibration. Yearly intervals are recommended at which time

an authorized repair facility should recalibrate the receiver to the manufacturer’s specifications.

d. Federal Aviation Regulations (14 CFR section 91.171) provides for certain VOR equipment accuracy

checks prior to flight under instrument flight rules. To comply with this requirement and to ensure satisfactory

operation of the airborne system, the FAA has provided pilots with the following means of checking VOR

receiver accuracy:

1. VOT or a radiated test signal from an appropriately rated radio repair station.

2. Certified airborne checkpoints and airways.

3. Certified checkpoints on the airport surface.

4. If an airborne checkpoint is not available, select an established VOR airway. Select a prominent ground

point, preferably more than 20 NM from the VOR ground facility and maneuver the aircraft directly over the

point at a reasonably low altitude above terrain and obstructions.

e. A radiated VOT from an appropriately rated radio repair station serves the same purpose as an FAA VOR

signal and the check is made in much the same manner as a VOT with the following differences:

1. The frequency normally approved by the Federal Communications Commission is 108.0 MHz.

2. Repair stations are not permitted to radiate the VOR test signal continuously; consequently, the owner

or operator must make arrangements with the repair station to have the test signal transmitted. This service is

not provided by all radio repair stations. The aircraft owner or operator must determine which repair station in

the local area provides this service. A representative of the repair station must make an entry into the aircraft

logbook or other permanent record certifying to the radial accuracy and the date of transmission. The owner,

operator or representative of the repair station may accomplish the necessary checks in the aircraft and make a

logbook entry stating the results. It is necessary to verify which test radial is being transmitted and whether you

should get a “to” or “from” indication.

f. Airborne and ground check points consist of certified radials that should be received at specific points on

the airport surface or over specific landmarks while airborne in the immediate vicinity of the airport.

1. Should an error in excess of plus or minus 4 degrees be indicated through use of a ground check, or plus

or minus 6 degrees using the airborne check, Instrument Flight Rules (IFR) flight must not be attempted without

first correcting the source of the error.

CAUTION−

No correction other than the correction card figures supplied by the manufacturer should be applied in making these

VOR receiver checks.

2. Locations of airborne check points, ground check points and VOTs are published in the Chart

Supplement.

3. If a dual system VOR (units independent of each other except for the antenna) is installed in the aircraft,

one system may be checked against the other. Turn both systems to the same VOR ground facility and note the

indicated bearing to that station. The maximum permissible variations between the two indicated bearings is 4

degrees.

1−1−5. Tactical Air Navigation (TACAN)

a. For reasons peculiar to military or naval operations (unusual siting conditions, the pitching and rolling of

a naval vessel, etc.) the civil VOR/Distance Measur ing Equipment (DME) system of air navigation was

1−1−4 Navigation Aids

2/20/25 AIM

considered unsuitable for military or naval use. A new navigational system, TACAN, was therefore developed

by the military and naval forces to more readily lend itself to military and naval requirements. As a result, the

FAA has integrated TACAN facilities with the civil VOR/DME program. Although the theoretical, or technical

principles of operation of TACAN equipment are quite different from those of VOR/DME facilities, the end

result, as far as the navigating pilot is concerned, is the same. These integrated facilities are called VORTACs.

b. TACAN ground equipment consists of either a fixed or mobile transmitting unit. The airborne unit in

conjunction with the ground unit reduces the transmitted signal to a visual presentation of both azimuth and

distance information. TACAN is a pulse system and operates in the Ultrahigh Frequency (UHF) band of

frequencies. Its use requires TACAN airborne equipment and does not operate through conventional VOR

equipment.

1−1−6. VHF Omni −directional Range/Tactical Air Navigation (VORTAC)

a. A VORTAC is a facility consisting of two components, VOR and TACAN, which provides three individual

services: VOR azimuth, TACAN azimuth and TACAN distance (DME) at one site. Although consisting of more

than one component, incorporating more than one operating frequency, and using more than one antenna system,

a VORTAC is considered to be a unified navigational aid. Both components of a VORTAC are envisioned as

operating simultaneously and providing the three services at all times.

b. Transmitted signals of VOR and TACAN are each identified by three −letter code transmission and are

interlocked so that pilots using VOR azimuth with TACAN distance can be assured that both signals being

received are definitely from the same ground station. The frequency channels of the VOR and the TACAN at

each VORTAC facility are “paired” in accordance with a national plan to simplify airborne operation.

1−1−7. Distance Measuring Equipment (DME)

a. In the operation of DME, paired pulses at a specific spacing are sent out from the aircraft (this is the

interrogation) and are received at the ground station. The ground station (transponder) then transmits paired

pulses back to the aircraft at the same pulse spacing but on a different frequency. The time required for the round

trip of this signal exchange is measured in the airborne DME unit and is translated into distance (nautical miles)

from the aircraft to the ground station.

b. Operating on the line−of−sight principle, DME furnishes distance information with a very high degree of

accuracy. Reliable signals may be received at distances up to 199 NM at line−of−sight altitude with an accuracy

of better than 1/2 mile or 3 percent of the distance, whichever is greater. Distance information received from DME

equipment is SLANT RANGE distance and not actual horizontal distance.

c. Operating frequency range of a DME according to ICAO Annex 10 is from 960 MHz to 1215 MHz. Aircraft

equipped with TACAN equipment will receive distance information from a VORTAC automatically, while

aircraft equipped with VOR must have a separate DME airborne unit.

d. VOR/DME, VORTAC, Instrument Landing System (ILS)/DME, and localizer (LOC)/DME navigation

facilities established by the FAA provide course and distance information from collocated components under a

frequency pairing plan. Aircraft receiving equipment which provides for automatic DME selection assures

reception of azimuth and distance information from a common source when designated VOR/DME, VORTAC,

ILS/DME, and LOC/DME are selected.

e. Due to the limited number of available frequencies, assignment of paired frequencies is required for certain

military noncollocated VOR and TACAN facilities which serve the same area but which may be separated by

distances up to a few miles.

f. VOR/DME, VORTAC, ILS/DME, and LOC/DME facilities are identified by synchronized identifications

which are transmitted on a time share basis. The VOR or localizer portion of the facility is identified by a coded

tone modulated at 1020 Hz or a combination of code and voice. The TACAN or DME is identified by a coded

tone modulated at 1350 Hz. The DME or TACAN coded identification is transmitted one time for each three or

Navigation Aids 1−1−5

AIM 2/20/253/15/077110.65R CHG 2AIM 8/7/25

four times that the VOR or localizer coded identification is transmitted. When either the VOR or the DME is

inoperative, it is important to recognize which identifier is retained for the operative facility. A single coded

identification with a repetition interval of approximately 30 seconds indicates that the DME is operative.

g. Aircraft equipment which provides for automatic DME selection assures reception of azimuth and distance

information from a common source when designated VOR/DME, VORTAC and ILS/DME navigation facilities

are selected. Pilots are cautioned to disregard any distance displays from automatically selected DME equipment

when VOR or ILS facilities, which do not have the DME feature installed, are being used for position

determination.

1−1−8. NAVAID Service Volumes

a. The FAA publishes Standard Service V olumes (SSVs) for most NA VAIDs. The SSV is a three−dimensional

volume within which the FAA ensures that a signal can be received with adequate signal strength and course

quality, and is free from interference from other NA V AIDs on similar frequencies (e.g., co− channel or

adjacent−channel interference). However, the SSV signal protection does not include potential blockage from

terrain or obstructions. The SSV is principally intended for off−route navigation, such as proceeding direct to

or from a VOR when not on a published instrument procedure or route. Navigation on published instrument

procedures (e.g., approaches or departures) or routes (e.g., Victor routes) may use NA V AIDs outside of the SSV ,

when Extended Service V olume (ESV) is approved, since adequate signal strength, course quality, and freedom

from interference are verified by the FAA prior to the publishing of the instrument procedure or route.

NOTE−

A conical area directly above the NAVAID is generally not usable for navigation.

b. A NA VAID will have service volume restrictions if it does not conform to signal strength and course quality

standards throughout the published SSV . Service volume restrictions are first published in Notices to Airmen

(NOTAMs) and then with the alphabetical listing of the NA V AIDs in the Chart Supplement. Service volume

restrictions do not generally apply to published instrument procedures or routes unless published in NOTAMs

for the affected instrument procedure or route.

c. VOR/DME/TACAN Standard Service V olumes (SSV).

1. The three original SSVs are shown in FIG 1−1−1 and are designated with three classes of NA V AIDs:

Terminal (T), Low (L), and High (H). The usable distance of the NA V AID depends on the altitude Above the

Transmitter Height (ATH) for each class. The lower edge of the usable distance when below 1,000 feet ATH is

shown in FIG 1−1−2 for Terminal NA V AIDs and in FIG 1−1−3 for Low and High NA V AIDs.

1−1−6 Navigation Aids

2/20/25 AIM

FIG 1−1−1

Original Standard Service Volumes

FIG 1−1−2

Lower Edge of the Terminal Service Volume (in altitude ATH)

Navigation Aids 1−1−7

AIM 2/20/25

FIG 1−1−3

Lower Edge of Low and High Service Volumes (in altitude ATH)

2. With the progression of navigation capabilities to Performance Based Navigation (PBN), additional

capabilities for off−route navigation are necessary. For example, the VOR MON (See paragraph 1 −1−3 f.)

requires the use of VORs at 5,000 feet AGL, which is beyond the original SSV ranges. Additionally, PBN

procedures using DME require extended ranges. As a result, the FAA created four additional SSVs. Two of the

new SSVs are associated with VORs: VOR Low (VL) and VOR High (VH), as shown in FIG 1−1−4. The other

two new SSVs are associated with DME: DME Low (DL) and DME High (DH), as shown in FIG 1−1−5. The

SSV at altitudes below 1,000 feet for the VL and VH are the same as FIG 1−1−3. The SSVs at altitudes below

12,900 feet for the DL and DH SSVs correspond to a conservative estimate of the DME radio line of sight (RLOS)

coverage at each altitude (not including possible terrain blockage).

1−1−8 Navigation Aids

2/20/25 AIM

FIG 1−1−4

New VOR Service Volumes

FIG 1−1−5

New DME Service Volumes

Navigation Aids 1−1−9

AIM 2/20/25

NOTE−

1. In the past, NAVAIDs at one location typically all had the same SSV . For example, a VORTAC typically had a High (H)

SSV for the VOR, the TACAN azimuth, and the TACAN DME, or a Low (L) or Terminal (T) SSV for all three. A VOR/DME

typically had a High (H), Low (L), or Terminal (T) for both the VOR and the DME. A common SSV may no longer be the

case at all locations. A VOR/DME, for example, could have an SSV of VL for the VOR and DH for the DME, or other

combinations.

2. The TACAN azimuth will only be classified as T, L, or H.

3. TBL 1−1−1 is a tabular summary of the VOR, DME, and TACAN NA VAID SSVs, not including altitudes

below 1,000 feet ATH for VOR and TACAN Azimuth, and not including ranges for altitudes below 12,900 feet

for TACAN and DME.

TBL 1−1−1

VOR/DME/TACAN Standard Service Volumes

SSV Designator Altitude and Range Boundaries

T (Terminal) From 1,000 feet ATH up to and including 12,000 feet ATH at radial distances out

to 25 NM.

L (Low Altitude) From 1,000 feet ATH up to and including 18,000 feet ATH at radial distances out

to 40 NM.

H (High Altitude) From 1,000 feet ATH up to and including 14,500 feet ATH at radial distances out

to 40 NM. From 14,500 ATH up to and including 60,000 feet at radial distances

out to 100 NM. From 18,000 feet ATH up to and including 45,000 feet ATH at ra-

dial distances out to 130 NM.

VL (VOR Low) From 1,000 feet ATH up to but not including 5,000 feet ATH at radial distances

out to 40 NM. From 5,000 feet ATH up to but not including 18,000 feet ATH at

radial distances out to 70 NM.

VH (VOR High) From 1,000 feet ATH up to but not including 5,000 feet ATH at radial distances

out to 40 NM. From 5,000 feet ATH up to but not including 14,500 feet ATH at

radial distances out to 70 NM. From 14,500 ATH up to and including 60,000 feet

at radial distances out to 100 NM. From 18,000 feet ATH up to and including

45,000 feet ATH at radial distances out to 130 NM.

DL (DME Low) For altitudes up to 12,900 feet ATH at a radial distance corresponding to the LOS

to the NA V AID. From 12,900 feet ATH up to but not including 18,000 feet ATH at

radial distances out to 130 NM

DH (DME High) For altitudes up to 12,900 feet ATH at a radial distance corresponding to the LOS

to the NA V AID. From 12,900 ATH up to and including 60,000 feet at radial dis-

tances out to 100 NM. From 12,900 feet ATH up to and including 45,000 feet ATH

at radial distances out to 130 NM.

d. Nondirectional Radio Beacon (NDB) SSVs. NDBs are classified according to their intended use. The

ranges of NDB service volumes are shown in TBL 1−1−2. The distance (radius) is the same at all altitudes for

each class.

1−1−10 Navigation Aids

AIM2/20/258/7/25 AIM

TBL 1−1−2

NDB Service Volumes

Class Distance (Radius) (NM)

Compass Locator 15

MH 25

H 50*

HH 75

*Service ranges of individual facilities may be less than 50 nautical miles (NM). Restrictions to service

volumes are first published as a Notice to Airmen and then with the alphabetical listing of the NAVAID in

the Chart Supplement.

1−1−9. Instrument Landing System (ILS)

a. General

1. The ILS is designed to provide an approach path for exact alignment and descent of an aircraft on final

approach to a runway.

2. The basic components of an ILS are the localizer, glide slope, and Outer Marker (OM) and, when installed

for use with Category II or Category III instrument approach procedures, an Inner Marker (IM).

3. The system may be divided functionally into three parts:

(a) Guidance information: localizer, glide slope.

(b) Range information: marker beacon, DME.

(c) Visual information: approach lights, touchdown and centerline lights, runway lights.

4. The following means may be used to substitute for the OM:

(a) Compass locator; or

(b) Precision Approach Radar (PAR); or

(c) Airport Surveillance Radar (ASR); or

(d) Distance Measuring Equipment (DME), Very High Frequency Omni−directional Range (VOR), or

Nondirectional beacon fixes authorized in the Standard Instrument Approach Procedure; or

(e) Very High Frequency Omni−directional Radio Range (VOR); or

(f) Nondirectional beacon fixes authorized in the Standard Instrument Approach Procedure; or

(g) A suitable RNA V system with Global Positioning System (GPS), capable of fix identification on a

Standard Instrument Approach Procedure.

5. Where a complete ILS system is installed on each end of a runway; (i.e., the approach end of Runway

4 and the approach end of Runway 22) the ILS systems are not in service simultaneously.

b. Localizer

1. The localizer transmitter operates on one of 40 ILS channels within the frequency range of 108.10 to

111.95 MHz. Signals provide the pilot with course guidance to the runway centerline.

2. The approach course of the localizer is called the front course and is used with other functional parts, e.g.,

glide slope, marker beacons, etc. The localizer signal is transmitted at the far end of the runway. It is adjusted

for a course width of (full scale fly−left to a full scale fly−right) of 700 feet at the runway threshold.

3. The course line along the extended centerline of a runway, in the opposite direction to the front course

is called the back course.

Navigation Aids 1−1−11

35°

35°

10°

10°

AIM 2/20/25

18

NM

CAUTION−

Unless the aircraft’s ILS equipment includes reverse sensing capability, when flying inbound on the back course it is

necessary to steer the aircraft in the direction opposite the needle deflection when making corrections from off−course

to on−course. This “flying away from the needle” is also required when flying outbound on the front course of the

localizer. Do not use back course signals for approach unless a back course approach procedure is published for that

particular runway and the approach is authorized by ATC.

(b) From 10 to 35 degrees either side of the course along a radius of 10 NM. (See FIG 1−1−6.)

(a) To 10 degrees either side of the course along a radius of 18 NM from the antenna; and

5. The localizer provides course guidance throughout the descent path to the runway threshold from a

distance of 18 NM from the antenna between an altitude of 1,000 feet above the highest terrain along the course

line and 4,500 feet above the elevation of the antenna site. Proper off−course indications are provided throughout

the following angular areas of the operational service volume:

4. Identification is in International Morse Code and consists of a three−letter identifier preceded by the letter

I () transmitted on the localizer frequency.

18 NM

Limits of Localizer Coverage

FIG 1−1−6

10 NM

EXAMPLE−

I−DIA

10

NM

NORMAL LIMITS OF LOCALIZERNORMAL LIMITS OF LOCALIZER

COVERAGE: THE SAME AREACOVERAGE: THE SAME AREA

APPLIES TO A BACK COURSEAPPLIES TO A BACK COURSE

RUNWAYRUNWAY

LOCALIZERLOCALIZER

ANTENNAANTENNA

WHEN PROVIDED.WHEN PROVIDED.

6. Unreliable signals may be received outside of these areas. ATC may clear aircraft on procedures beyond

the service volume when the controller initiates the action or when the pilot requests, and radar monitoring is

provided.

7. The areas described in paragraph 1 −1−9 b5 and depicted in FIG 1−1−6 represent a Standard Service

V olume (SSV) localizer. All charted procedures with localizer coverage beyond the 18 NM SSV have been

through the approval process for Expanded Service V olume (ESV), and have been validated by flight inspection.

(See FIG 1−1−7.)

1−1−12 Navigation Aids

2/20/25 AIM

FIG 1−1−7

ILS Expanded Service Volume

c. Localizer Type Directional Aid (LDA)

1. The LDA is of comparable use and accuracy to a localizer but is not part of a complete ILS. The LDA

course usually provides a more precise approach course than the similar Simplified Directional Facility (SDF)

installation, which may have a course width of 6 or 12 degrees.

2. The LDA is not aligned with the runway. Straight−in minimums may be published where alignment does

not exceed 30 degrees between the course and runway. Circling minimums only are published where this

alignment exceeds 30 degrees.

3. A very limited number of LDA approaches also incorporate a glideslope. These are annotated in the plan

view of the instrument approach chart with a note, “LDA/Glideslope.” These procedures fall under a newly

defined category of approaches called Approach with Vertical Guidance (APV) described in paragraph 5−4−5,

Instrument Approach Procedure Charts, subparagraph a7(b), Approach with Vertical Guidance (APV). LDA

minima for with and without glideslope is provided and annotated on the minima lines of the approach chart as

S−LDA/GS and S−LDA. Because the final approach course is not aligned with the runway centerline, additional

maneuvering will be required compared to an ILS approach.

d. Glide Slope/Glide Path

1. The UHF glide slope transmitter, operating on one of the 40 ILS channels within the frequency range

329.15 MHz, to 335.00 MHz radiates its signals in the direction of the localizer front course. The term “glide

path” means that portion of the glide slope that intersects the localizer.

Navigation Aids 1−1−13

AIM 2/20/25

CAUTION−

False glide slope signals may exist in the area of the localizer back course approach which can cause the glide slope flag

alarm to disappear and present unreliable glide slope information. Disregard all glide slope signal indications when

making a localizer back course approach unless a glide slope is specified on the approach and landing chart.

2. The glide slope transmitter is located between 750 feet and 1,250 feet from the approach end of the

runway (down the runway) and offset 250 to 650 feet from the runway centerline. It transmits a glide path beam

1.4 degrees wide (vertically). The signal provides descent information for navigation down to the lowest

authorized decision height (DH) specified in the approved ILS approach procedure. The glidepath may not be

suitable for navigation below the lowest authorized DH and any reference to glidepath indications below that

height must be supplemented by visual reference to the runway environment. Glidepaths with no published DH

are usable to runway threshold.

3. The glide path projection angle is normally adjusted to 3 degrees above horizontal so that it intersects

the MM at about 200 feet and the OM at about 1,400 feet above the runway elevation. The glide slope is normally

usable to the distance of 10 NM. However, at some locations, the glide slope has been certified for an extended

service volume which exceeds 10 NM.

4. Pilots must be alert when approaching the glidepath interception. False courses and reverse sensing will

occur at angles considerably greater than the published path.

5. Make every effort to remain on the indicated glide path.

CAUTION−

Avoid flying below the glide path to assure obstacle/terrain clearance is maintained.

6. The published glide slope threshold crossing height (TCH) DOES NOT represent the height of the actual

glide path on−course indication above the runway threshold. It is used as a reference for planning purposes which

represents the height above the runway threshold that an aircraft’s glide slope antenna should be, if that aircraft

remains on a trajectory formed by the four−mile−to−middle marker glidepath segment.

7. Pilots must be aware of the vertical height between the aircraft’s glide slope antenna and the main gear

in the landing configuration and, at the DH, plan to adjust the descent angle accordingly if the published TCH

indicates the wheel crossing height over the runway threshold may not be satisfactory. Tests indicate a

comfortable wheel crossing height is approximately 20 to 30 feet, depending on the type of aircraft.

NOTE−

The TCH for a runway is established based on several factors including the largest aircraft category that normally uses the

runway, how airport layout affects the glide slope antenna placement, and terrain. A higher than optimum TCH, with the

same glide path angle, may cause the aircraft to touch down further from the threshold if the trajectory of the approach is

maintained until the flare. Pilots should consider the effect of a high TCH on the runway available for stopping the aircraft.

e. Distance Measuring Equipment (DME)

1. When installed with the ILS and specified in the approach procedure, DME may be used:

(a) In lieu of the OM;

(b) As a back course (BC) final approach fix (FAF); and

(c) To establish other fixes on the localizer course.

2. In some cases, DME from a separate facility may be used within Terminal Instrument Procedures

(TERPS) limitations:

(a) To provide ARC initial approach segments;

(b) As a FAF for BC approaches; and

(c) As a substitute for the OM.

f. Marker Beacon

1−1−14 Navigation Aids

2/20/25 AIM

1. ILS marker beacons have a rated power output of 3 watts or less and an antenna array designed to produce

an elliptical pattern with dimensions, at 1,000 feet above the antenna, of approximately 2,400 feet in width and

4,200 feet in length. Airborne marker beacon receivers with a selective sensitivity feature should always be

operated in the “low” sensitivity position for proper reception of ILS marker beacons.

2. ILS systems may have an associated OM. An MM is no longer required. Locations with a Category II

ILS also have an Inner Marker (IM). Due to advances in both ground navigation equipment and airborne avionics,

as well as the numerous means that may be used as a substitute for a marker beacon, the current requirements

for the use of marker beacons are:

(a) An OM or suitable substitute identifies the Final Approach Fix (FAF) for nonprecision approach

(NPA) operations (for example, localizer only); and

(b) The MM indicates a position approximately 3,500 feet from the landing threshold. This is also the

position where an aircraft on the glide path will be at an altitude of approximately 200 feet above the elevation

of the touchdown zone. A MM is no longer operationally required. There are some MMs still in use, but there

are no MMs being installed at new ILS sites by the FAA; and

(c) An IM, where installed, indicates the point at which an aircraft is at decision height on the glide path

during a Category II ILS approach. An IM is only required for CAT II operations that do not have a published

radio altitude (RA) minimum.

TBL 1−1−3

Marker Passage Indications

Marker Code Light

OM    BLUE

MM     AMBER

IM     WHITE

BC     WHITE

3. A back course marker normally indicates the ILS back course final approach fix where approach descent

is commenced.

g. Compass Locator

1. Compass locator transmitters are often situated at the MM and OM sites. The transmitters have a power

of less than 25 watts, a range of at least 15 miles and operate between 190 and 535 kHz. At some locations, higher

powered radio beacons, up to 400 watts, are used as OM compass locators.

2. Compass locators transmit two letter identification groups. The outer locator transmits the first two letters

of the localizer identification group, and the middle locator transmits the last two letters of the localizer

identification group.

h. ILS Frequency (See TBL 1−1−4.)

Navigation Aids 1−1−15

AIM 2/20/25

TBL 1−1−4

Frequency Pairs Allocated for ILS

Localizer MHz Glide Slope

108.10 334.70

108.15 334.55

108.3 334.10

108.35 333.95

108.5 329.90

108.55 329.75

108.7 330.50

108.75 330.35

108.9 329.30

108.95 329.15

109.1 331.40

109.15 331.25

109.3 332.00

109.35 331.85

109.50 332.60

109.55 332.45

109.70 333.20

109.75 333.05

109.90 333.80

109.95 333.65

Localizer MHz Glide Slope

110.1 334.40

110.15 334.25

110.3 335.00

110.35 334.85

110.5 329.60

110.55 329.45

110.70 330.20

110.75 330.05

110.90 330.80

110.95 330.65

111.10 331.70

111.15 331.55

111.30 332.30

111.35 332.15

111.50 332.9

111.55 332.75

111.70 333.5

111.75 333.35

111.90 331.1

111.95 330.95

i. ILS Minimums

1. The lowest authorized ILS minimums, with all required ground and airborne systems components

operative, are:

(a) Category I. Decision Height (DH) 200 feet and Runway Visual Range (RVR) 2,400 feet (with

touchdown zone and centerline lighting, RVR 1,800 feet), or (with Autopilot or FD or HUD, RVR 1,800 feet);

(b) Special Authorization Category I. DH 150 feet and Runway Visual Range (RVR) 1,400 feet, HUD

to DH;

(c) Category II. DH 100 feet and RVR 1,200 feet (with autoland or HUD to touchdown and noted on

authorization, RVR 1,000 feet);

(d) Special Authorization Category II with Reduced Lighting. DH 100 feet and RVR 1,200 feet with

autoland or HUD to touchdown and noted on authorization (touchdown zone, centerline lighting, and ALSF−2

are not required);

(e) Category IIIa. No DH or DH below 100 feet and RVR not less than 700 feet;

(f) Category IIIb. No DH or DH below 50 feet and RVR less than 700 feet but not less than 150 feet;

and

(g) Category IIIc. No DH and no RVR limitation.

NOTE−

Special authorization and equipment required for Categories II and III.

j. Inoperative ILS Components

1. Inoperative localizer. When the localizer fails, an ILS approach is not authorized.

2. Inoperative glide slope. When the glide slope fails, the ILS reverts to a non −precision localizer

approach.

REFERENCE−

See the inoperative component table in the U.S. Government Terminal Procedures Publication (TPP), for adjustments to minimums due to inoperative

airborne or ground system equipment.

1−1−16 Navigation Aids

2/20/25 AIM

k. ILS Course and Glideslope Distortion

1. All pilots should be aware that ILS installations are subject to signal interference by surface vehicles and

aircraft (either on the ground or airborne). ILS CRITICAL AREAS are established near each localizer and glide

slope antenna. Pilots should be aware of the level of critical area protection they can expect in various weather

conditions and understand that signal disturbances may occur as a result of normal airport operations irrespective

of the official weather observation.

2. ATC is not always required to issue control instructions to avoid interfering operations within ILS critical

areas at controlled airports during the hours the Airport Traffic Control Tower (ATCT) is in operation. ATC

responsibilities vary depending on the official weather observation and are described as follows:

(a) Weather Conditions. Official weather observation indicates a ceiling of 800 feet or higher and

visibility 2 miles or greater, no localizer or glideslope critical area protection is provided by ATC unless

specifically requested by the flight crew.

(b) Weather Conditions. Official weather observation indicates a ceiling of less than 800 feet or

visibility less than 2 miles.

(1) Holding. Aircraft holding below 5,000 feet between the outer marker and the airport may cause

localizer signal variations for aircraft conducting the ILS approach. Accordingly, such holding will not be

authorized by ATC.

(2) Localizer Critical Area. When an arriving aircraft is inside the outer marker (OM) or the fix used

in lieu of the OM, vehicles and aircraft will not be authorized in or over the precision approach critical area

except:

[a] A preceding arriving aircraft on the same or another runway may pass over or through the

localizer critical area, and;

[b] A preceding departing aircraft or missed approach on the same or another runway may pass

through or over the localizer critical area.

(3) Glide Slope Critical Area. ATC will not authorize vehicles or aircraft operations in or over the

glideslope critical area when an arriving aircraft is inside the outer marker (OM), or the fix used in lieu of the

OM, unless the arriving aircraft has reported the runway in sight and is circling or side-stepping to land on another

runway.

(c) Weather Conditions. Official weather observation indicates a ceiling less than 200 feet or runway

visual range (RVR) less than 2000 feet.

(1) Localizer Critical Area. In addition to the critical area protection described in 1−1−9k2(b) above,

when an arriving aircraft is inside the middle marker (MM), or in the absence of a MM, ½ mile final, ATC will

not authorize:

[a] A preceding arriving aircraft on the same or another runway to pass over or through the localizer

critical area, or;

[b] A preceding departing aircraft or missed approach on the same or another runway to pass through

or over the localizer critical area.

3. In order to ensure that pilot and controller expectations match with respect to critical area protection for

a given approach and landing operation, a flight crew should advise the tower any time it intends to conduct any

autoland operation or use an SA CAT I, any CAT II, or any CAT III line of minima anytime the official weather

observation is at or above a ceiling of 800 feet and 2 miles visibility. If A TC is unable to protect the critical area,

they will advise the flight crew.

EXAMPLE−

Denver Tower , United 1153, Request Autoland (runway) ATC replies with:

United 1153, Denver Tower , Roger, Critical Areas not protected.

Navigation Aids 1−1−17

AIM 2/20/25

4. Pilots are cautioned that even when the critical areas are considered to be protected, unless the official

weather observation including controller observations indicates a ceiling less than 200 feet or RVR less than 2000

feet, A TC may still authorize a preceding arriving, departing, or missed approach aircraft to pass through or over

the localizer critical area and that this may cause signal disturbances that could result in an undesired aircraft state

during the final stages of the approach, landing, and rollout.

5. Pilots are cautioned that vehicular traffic not subject to ATC may cause momentary deviation to ILS

course or glide slope signals. Also, critical areas are not protected at uncontrolled airports or at airports with an

operating control tower when weather or visibility conditions are above those requiring protective measures.

Aircraft conducting coupled or autoland operations should be especially alert in monitoring automatic flight

control systems and be prepared to intervene as necessary. (See FIG 1−1−8.)

NOTE−

Unless otherwise coordinated through Flight Standards, ILS signals to Category I runways are not flight inspected below

the point that is 100 feet less than the decision altitude (DA). Guidance signal anomalies may be encountered below this

altitude.

1−1−10. Simplified Directional Facility (SDF)

a. The SDF provides a final approach course similar to that of the ILS localizer. It does not provide glide slope

information. A clear understanding of the ILS localizer and the additional factors listed below completely

describe the operational characteristics and use of the SDF.

b. The SDF transmits signals within the range of 108.10 to 111.95 MHz.

c. The approach techniques and procedures used in an SDF instrument approach are essentially the same as

those employed in executing a standard localizer approach except the SDF course may not be aligned with the

runway and the course may be wider, resulting in less precision.

d. Usable off−course indications are limited to 35 degrees either side of the course centerline. Instrument

indications received beyond 35 degrees should be disregarded.

e. The SDF antenna may be offset from the runway centerline. Because of this, the angle of convergence

between the final approach course and the runway bearing should be determined by reference to the instrument

approach procedure chart. This angle is generally not more than 3 degrees. However, it should be noted that

inasmuch as the approach course originates at the antenna site, an approach which is continued beyond the

runway threshold will lead the aircraft to the SDF offset position rather than along the runway centerline.

f. The SDF signal is fixed at either 6 degrees or 12 degrees as necessary to provide maximum flyability and

optimum course quality.

g. Identification consists of a three−letter identifier transmitted in Morse Code on the SDF frequency. The

appropriate instrument approach chart will indicate the identifier used at a particular airport.

1−1−18 Navigation Aids

2/20/25 AIM

FIG 1−1−8

FAA Instrument Landing Systems

Navigation Aids 1−1−19

AIM 2/20/25

1−1−11. NAVAID Identifier Removal During Maintenance

During periods of routine or emergency maintenance, coded identification (or code and voice, where applicable)

is removed from certain FAA NA V AIDs. Removal of identification serves as a warning to pilots that the facility

is officially off the air for tune−up or repair and may be unreliable even though intermittent or constant signals

are received.

NOTE−

During periods of maintenance VHF ranges may radiate a T−E−S−T code (-   -).

NOTE−

DO NOT attempt to fly a procedure that is NOTAMed out of service even if the identification is present. In certain cases,

the identification may be transmitted for short periods as part of the testing.

1−1−12. NAVAIDs with Voice

a. V oice equipped en route radio navigational aids are under the operational control of either a Flight Service

Station (FSS) or an approach control facility. Facilities with two −way voice communication available are

indicated in the Chart Supplement and aeronautical charts.

b. Unless otherwise noted on the chart, all radio navigation aids operate continuously except during

shutdowns for maintenance. Hours of operation of facilities not operating continuously are annotated on charts

and in the Chart Supplement.

1−1−13. User Reports Requested on NAVAID Outages

a. Users of the National Airspace System (NAS) can render valuable assistance in the early correction of

NA V AID malfunctions or GNSS problems and are encouraged to report their observations of undesirable

avionics performance. Although NA V AIDs are monitored by electronic detectors, adverse effects of electronic

interference, new obstructions, or changes in terrain near the NA VAID can exist without detection by the ground

monitors. Some of the characteristics of malfunction or deteriorating performance which should be reported are:

erratic course or bearing indications; intermittent, or full, flag alarm; garbled, missing or obviously improper

coded identification; poor quality communications reception; or, in the case of frequency interference, an audible

hum or tone accompanying radio communications or NA V AID identification. GNSS problems are often

characterized by navigation degradation or service loss indications. For instance, pilots conducting operations

in areas where there is GNSS interference may be unable to use GPS for navigation, and ADS −B may be

unavailable for surveillance. Radio frequency interference may affect both navigation for the pilot and

surveillance by the air traffic controller. Depending on the equipment and integration, either an advisory light

or message may alert the pilot. Air traffic controllers monitoring ADS−B reports may stop receiving ADS−B

position messages and associated aircraft tracks.

b. Malfunctioning, faulty, inappropriately installed, operated, or modified GPS re−radiator systems, intended

to be used for aircraft maintenance activities, have resulted in unintentional disruption of aviation GPS receivers.

This type of disruption could result in unflagged, erroneous position −information output to primary flight

displays/indicators and to other aircraft and air traffic control systems. Since Receiver Autonomous Integrity

Monitoring (RAIM) is only partially effective against this type of disruption (effectively a “signal spoofing”),

the pilot may not be aware of any erroneous navigation indications; ATC may be the only means available to

identify these disruptions and detect unexpected aircraft positions while monitoring aircraft for IFR separation.

c. Pilots encountering navigation error events should transition to another source of navigation and request

amended clearances from ATC as necessary.

d. Pilots are encouraged to submit detailed reports of NA V AID or GPS anomaly as soon as practical. Pilot

reports of navigation error events should contain the following information:

1. Date and time the anomaly was observed, and NA V AID ID (or GPS).

2. Location of the aircraft at the time the anomaly started and ended (e.g., latitude/longitude or

bearing/distance from a reference point),

1−1−20 Navigation Aids

2/20/25 AIM

3. Heading, altitude, type of aircraft (make/model/call sign),

4. Type of avionics/receivers in use (e.g., make/model/software series or version),

5. Number of satellites being tracked, if applicable,

6. Description of the position/navigation/timing anomaly observed, and duration of the event,

7. Consequences/operational impact(s) of the NA V AID or GPS anomaly,

8. Actions taken to mitigate the anomaly and/or remedy provided by the ATC facility,

9. Post flight pilot/maintenance actions taken.

e. Pilots operating an aircraft in controlled airspace under IFR shall comply with CFR § 91.187 and promptly

report as soon as practical to ATC any malfunctions of navigational equipment occurring in flight; pilots should

submit initial reports:

1. Immediately, by radio to the controlling ATC facility or FSS.

2. By telephone to the nearest ATC facility controlling the airspace where the disruption was experienced.

3. Additionally, GPS problems should be reported, post flight, by Internet via the GPS Anomaly Reporting

Form at http://www.faa.gov/air_traffic/nas/gps_reports/.

f. To minimize ATC workload, GPS anomalies associated with known testing NOTAMs should NOT be

reported in−flight to ATC in detail; EXCEPT when:

1. GPS degradation is experienced outside the NOTAMed area,

2. Pilot observes any unexpected consequences (e.g., equipment failure, suspected spoofing, failure of

unexpected aircraft systems, such as TAWS).

1−1−14. LORAN

NOTE−

In accordance with the 2010 DHS Appropriations Act, the U.S. Coast Guard (USCG) terminated the transmission of all U.S.

LORAN−C signals on 08 Feb 2010. The USCG also terminated the transmission of the Russian American signals on 01 Aug

2010, and the Canadian LORAN −C signals on 03 Aug 2010. For more information, visit http://www.navcen.uscg.gov.

Operators should also note that TSO−C60b, AIRBORNE AREA NAVIGATION EQUIPMENT USING LORAN−C INPUTS,

has been canceled by the F AA.

1−1−15. Inertial Reference Unit (IRU), Inertial Navigation System (INS), and Attitude Heading

Reference System (AHRS)

a. IRUs are self−contained systems comprised of gyros and accelerometers that provide aircraft attitude

(pitch, roll, and heading), position, and velocity information in response to signals resulting from inertial effects

on system components. Once aligned with a known position, IRUs continuously calculate position and velocity.

IRU position accuracy decays with time. This degradation is known as “drift.”

b. INSs combine the components of an IRU with an internal navigation computer. By programming a series

of waypoints, these systems will navigate along a predetermined track.

c. AHRSs are electronic devices that provide attitude information to aircraft systems such as weather radar

and autopilot, but do not directly compute position information.

d. Aircraft equipped with slaved compass systems may be susceptible to heading errors caused by exposure

to magnetic field disturbances (flux fields) found in materials that are commonly located on the surface or buried

under taxiways and ramps. These materials generate a magnetic flux field that can be sensed by the aircraft’s

compass system flux detector or “gate,” which can cause the aircraft’s system to align with the material’s

magnetic field rather than the earth’s natural magnetic field. The system’s erroneous heading may not

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self-correct. Prior to take off pilots should be aware that a heading misalignment may have occurred during taxi.

Pilots are encouraged to follow the manufacturer’s or other appropriate procedures to correct possible heading

misalignment before take off is commenced.

1−1−16. Doppler Radar

Doppler Radar is a semiautomatic self− contained dead reckoning navigation system (radar sensor plus

computer) which is not continuously dependent on information derived from ground based or external aids. The

system employs radar signals to detect and measure ground speed and drift angle, using the aircraft compass

system as its directional reference. Doppler is less accurate than INS, however, and the use of an external

reference is required for periodic updates if acceptable position accuracy is to be achieved on long range flights.

1−1−17. Global Positioning System (GPS)

a. System Overview

1. System Description. The Global Positioning System is a space-based radio navigation system used to

determine precise position anywhere in the world. The 24 satellite constellation is designed to ensure at least five

satellites are always visible to a user worldwide. A minimum of four satellites is necessary for receivers to

establish an accurate three−dimensional position. The receiver uses data from satellites above the mask angle

(the lowest angle above the horizon at which a receiver can use a satellite). The Department of Defense (DoD)

is responsible for operating the GPS satellite constellation and monitors the GPS satellites to ensure proper

operation. Each satellite’s orbital parameters (ephemeris data) are sent to each satellite for broadcast as part of

the data message embedded in the GPS signal. The GPS coordinate system is the Cartesian earth −centered,

earth−fixed coordinates as specified in the World Geodetic System 1984 (WGS−84).

2. System Availability and Reliability.

(a) The status of GPS satellites is broadcast as part of the data message transmitted by the GPS satellites.

GPS status information is also available by means of the U.S. Coast Guard navigation information service: (703)

313−5907, Internet: http://www.navcen.uscg.gov/. Additionally, satellite status is available through the Notice

to Airmen (NOTAM) system.

(b) GNSS operational status depends on the type of equipment being used. For GPS −only equipment

TSO−C129 or TSO-C196(), the operational status of non −precision approach capability for flight planning

purposes is provided through a prediction program that is embedded in the receiver or provided separately.

3. Receiver Autonomous Integrity Monitoring (RAIM). RAIM is the capability of a GPS receiver to

perform integrity monitoring on itself by ensuring available satellite signals meet the integrity requirements for

a given phase of flight. Without RAIM, the pilot has no assurance of the GPS position integrity. RAIM provides

immediate feedback to the pilot. This fault detection is critical for performance-based navigation (PBN)(see

paragraph 1−2−1, Performance−Based Navigation (PBN) and Area Navigation (RNA V), for an introduction to

PBN), because delays of up to two hours can occur before an erroneous satellite transmission is detected and

corrected by the satellite control segment.

(a) In order for RAIM to determine if a satellite is providing corrupted information, at least one satellite,

in addition to those required for navigation, must be in view for the receiver to perform the RAIM function.

RAIM requires a minimum of 5 satellites, or 4 satellites and barometric altimeter input (baro−aiding), to detect

an integrity anomaly. Baro−aiding is a method of augmenting the GPS integrity solution by using a non-satellite

input source in lieu of the fifth satellite. Some GPS receivers also have a RAIM capability, called fault detection

and exclusion (FDE), that excludes a failed satellite from the position solution; GPS receivers capable of FDE

require 6 satellites or 5 satellites with baro−aiding. This allows the GPS receiver to isolate the corrupt satellite

signal, remove it from the position solution, and still provide an integrity-assured position. To ensure that

baro−aiding is available, enter the current altimeter setting into the receiver as described in the operating manual.

Do not use the GPS derived altitude due to the large GPS vertical errors that will make the integrity monitoring

function invalid.

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2/20/25 AIM

(b) There are generally two types of RAIM fault messages. The first type of message indicates that there

are not enough satellites available to provide RAIM integrity monitoring. The GPS navigation solution may be

acceptable, but the integrity of the solution cannot be determined. The second type indicates that the RAIM

integrity monitor has detected a potential error and that there is an inconsistency in the navigation solution for

the given phase of flight. Without RAIM capability, the pilot has no assurance of the accuracy of the GPS

position.

4. Selective Availability. Selective Availability (SA) is a method by which the accuracy of GPS is

intentionally degraded. This feature was designed to deny hostile use of precise GPS positioning data. SA was

discontinued on May 1, 2000, but many GPS receivers are designed to assume that SA is still active. New

receivers may take advantage of the discontinuance of SA based on the performance values in ICAO Annex 10.

b. Operational Use of GPS. U.S. civil operators may use approved GPS equipment in oceanic airspace,

certain remote areas, the National Airspace System and other States as authorized (please consult the applicable

Aeronautical Information Publication). Equipage other than GPS may be required for the desired operation. GPS

navigation is used for both Visual Flight Rules (VFR) and Instrument Flight Rules (IFR) operations.

1. VFR Operations

(a) GPS navigation has become an asset to VFR pilots by providing increased navigational capabilities

and enhanced situational awareness. Although GPS has provided many benefits to the VFR pilot, care must be

exercised to ensure that system capabilities are not exceeded. VFR pilots should integrate GPS navigation with

electronic navigation (when possible), as well as pilotage and dead reckoning.

(b) GPS receivers used for VFR navigation vary from fully integrated IFR/VFR installation used to

support VFR operations to hand−held devices. Pilots must understand the limitations of the receivers prior to

using in flight to avoid misusing navigation information. (See TBL 1−1−6.) Most receivers are not intuitive. The

pilot must learn the various keystrokes, knob functions, and displays that are used in the operation of the receiver.

Some manufacturers provide computer−based tutorials or simulations of their receivers that pilots can use to

become familiar with operating the equipment.

(c) When using GPS for VFR operations, RAIM capability, database currency, and antenna location are

critical areas of concern.

(1) RAIM Capability. VFR GPS panel mount receivers and hand−held units have no RAIM alerting

capability. This prevents the pilot from being alerted to the loss of the required number of satellites in view, or

the detection of a position error. Pilots should use a systematic cross−check with other navigation techniques to

verify position. Be suspicious of the GPS position if a disagreement exists between the two positions.

(2) Database Currency. Check the currency of the database. Databases must be updated for IFR

operations and should be updated for all other operations. However, there is no requirement for databases to be

updated for VFR navigation. It is not recommended to use a moving map with an outdated database in and around

critical airspace. Pilots using an outdated database should verify waypoints using current aeronautical products;

for example, Chart Supplement, Sectional Chart, or En Route Chart.

(3) Antenna Location. The antenna location for GPS receivers used for IFR and VFR operations may

differ. VFR antennae are typically placed for convenience more than performance, while IFR installations

ensure a clear view is provided with the satellites. Antennae not providing a clear view have a greater opportunity

to lose the satellite navigational signal. This is especially true in the case of hand−held GPS receivers. Typically,

suction cups are used to place the GPS antennas on the inside of cockpit windows. While this method has great

utility, the antenna location is limited to the cockpit or cabin which rarely provides a clear view of all available

satellites. Consequently, signal losses may occur due to aircraft structure blocking satellite signals, causing a

loss of navigation capability. These losses, coupled with a lack of RAIM capability, could present erroneous

position and navigation information with no warning to the pilot. While the use of a hand−held GPS for VFR

operations is not limited by regulation, modification of the aircraft, such as installing a panel− or yoke−mounted

holder, is governed by 14 CFR part 43. Consult with your mechanic to ensure compliance with the regulation

and safe installation.

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(d) Do not solely rely on GPS for VFR navigation. No design standard of accuracy or integrity is used

for a VFR GPS receiver. VFR GPS receivers should be used in conjunction with other forms of navigation during

VFR operations to ensure a correct route of flight is maintained. Minimize head−down time in the aircraft by

being familiar with your GPS receiver’s operation and by keeping eyes outside scanning for traffic, terrain, and

obstacles.

(e) VFR Waypoints

(1) VFR waypoints provide VFR pilots with a supplementary tool to assist with position awareness

while navigating visually in aircraft equipped with area navigation receivers. VFR waypoints should be used as

a tool to supplement current navigation procedures. The uses of VFR waypoints include providing navigational

aids for pilots unfamiliar with an area, waypoint definition of existing reporting points, enhanced navigation in

and around Class B and Class C airspace, enhanced navigation around Special Use Airspace, and entry points

for commonly flown mountain passes. VFR pilots should rely on appropriate and current aeronautical charts

published specifically for visual navigation. If operating in a terminal area, pilots should take advantage of the

Terminal Area Chart available for that area, if published. The use of VFR waypoints does not relieve the pilot

of any responsibility to comply with the operational requirements of 14 CFR part 91.

(2) VFR waypoint names (for computer entry and flight plans) consist of five letters beginning with

the letters “VP” and are retrievable from navigation databases. The VFR waypoint names are not intended to be

pronounceable, and they are not for use in ATC communications. On VFR charts, stand−alone VFR waypoints

will be portrayed using the same four−point star symbol used for IFR waypoints. VFR waypoints collocated with

visual check−points on the chart will be identified by small magenta flag symbols. VFR waypoints collocated

with visual check−points will be pronounceable based on the name of the visual check−point and may be used

for ATC communications. Each VFR waypoint name will appear in parentheses adjacent to the geographic

location on the chart. Latitude/longitude data for all established VFR waypoints is accessible through FAA Order

JO 7350.9, Location Identifiers.

(3) VFR waypoints may not be used on IFR flight plans. VFR waypoints are not recognized by the IFR

system and will be rejected for IFR routing purposes.

(4) Pilots may use the five−letter identifier as a waypoint in the route of flight section on a VFR flight

plan. Pilots may use the VFR waypoints only when operating under VFR conditions. The point may represent

an intended course change or describe the planned route of flight. This VFR filing would be similar to how a VOR

would be used in a route of flight.

(5) VFR waypoints intended for use during flight should be loaded into the receiver while on the

ground. Once airborne, pilots should avoid programming routes or VFR waypoint chains into their receivers.

(6) Pilots should be vigilant to see and avoid other traffic when near VFR waypoints. With the increased

use of GPS navigation and accuracy, expect increased traffic near VFR waypoints. Regardless of the class of

airspace, monitor the available ATC frequency for traffic information on other aircraft operating in the vicinity.

See paragraph 7−6−3, VFR in Congested Areas, for more information.

(7) Mountain pass entry points are marked for convenience to assist pilots with flight planning and

visual navigation. Do not attempt to fly a mountain pass directly from VFR waypoint to VFR waypoint—they

do not create a path through the mountain pass. Alternative routes are always available. It is the pilot in

command’s responsibility to choose a suitable route for the intended flight and known conditions.

REFERENCE−

AIM, Para 7−6−7, Mountain Flying.

2. IFR Use of GPS

(a) General Requirements. Authorization to conduct any GPS operation under IFR requires:

(1) GPS navigation equipment used for IFR operations must be approved in accordance with the

requirements specified in Technical Standard Order (TSO) TSO −C129(), TSO−C196(), TSO−C145(), or

TSO−C146(), and the installation must be done in accordance with Advisory Circular AC 20−138, Airworthiness

1−1−24 Navigation Aids

2/20/25 AIM

Approval of Positioning and Navigation Systems. Equipment approved in accordance with TSO−C115a does

not meet the requirements of TSO −C129. Visual flight rules (VFR) and hand −held GPS systems are not

authorized for IFR navigation, instrument approaches, or as a principal instrument flight reference.

(2) Aircraft using un-augmented GPS (TSO-C129() or TSO-C196()) for navigation under IFR must

be equipped with an alternate approved and operational means of navigation suitable for navigating the proposed

route of flight. (Examples of alternate navigation equipment include VOR or DME/DME/IRU capability).

Active monitoring of alternative navigation equipment is not required when RAIM is available for integrity

monitoring. Active monitoring of an alternate means of navigation is required when the GPS RAIM capability

is lost.

(3) Procedures must be established for use in the event that the loss of RAIM capability is predicted

to occur. In situations where RAIM is predicted to be unavailable, the flight must rely on other approved

navigation equipment, re-route to where RAIM is available, delay departure, or cancel the flight.

(4) The GPS operation must be conducted in accordance with the FAA −approved aircraft flight

manual (AFM) or flight manual supplement. Flight crew members must be thoroughly familiar with the

particular GPS equipment installed in the aircraft, the receiver operation manual, and the AFM or flight manual

supplement. Operation, receiver presentation and capabilities of GPS equipment vary. Due to these differences,

operation of GPS receivers of different brands, or even models of the same brand, under IFR should not be

attempted without thorough operational knowledge. Most receivers have a built −in simulator mode, which

allows the pilot to become familiar with operation prior to attempting operation in the aircraft.

(5) Aircraft navigating by IFR−approved GPS are considered to be performance−based navigation

(PBN) aircraft and have special equipment suffixes. File the appropriate equipment suffix in accordance with

Appendix 4, TBL 4−2, on the ATC flight plan. If GPS avionics become inoperative, the pilot should advise ATC

and amend the equipment suffix.

(6) Prior to any GPS IFR operation, the pilot must review appropriate NOTAMs and aeronautical

information. (See GPS NOTAMs/Aeronautical Information).

(b) Database Requirements. The onboard navigation data must be current and appropriate for the region

of intended operation and should include the navigation aids, waypoints, and relevant coded terminal airspace

procedures for the departure, arrival, and alternate airfields.

(1) Further database guidance for terminal and en route requirements may be found in AC 90-100, U.S.

Terminal and En Route Area Navigation (RNA V) Operations.

(2) Further database guidance on Required Navigation Performance (RNP) instrument approach

operations, RNP terminal, and RNP en route requirements may be found in AC 90-105, Approval Guidance for

RNP Operations and Barometric Vertical Navigation in the U.S. National Airspace System.

(3) All approach procedures to be flown must be retrievable from the current airborne navigation

database supplied by the equipment manufacturer or other FAA−approved source. The system must be able to

retrieve the procedure by name from the aircraft navigation database, not just as a manually entered series of

waypoints. Manual entry of waypoints using latitude/longitude or place/bearing is not permitted for approach

procedures.

(4) Prior to using a procedure or waypoint retrieved from the airborne navigation database, the pilot

should verify the validity of the database. This verification should include the following preflight and inflight

steps:

[a] Preflight:

[1] Determine the date of database issuance, and verify that the date/time of proposed use is

before the expiration date/time.

[2] V erify that the database provider has not published a notice limiting the use of the specific

waypoint or procedure.

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[b] Inflight:

[1] Determine that the waypoints and transition names coincide with names found on the

procedure chart. Do not use waypoints which do not exactly match the spelling shown on published procedure

charts.

[2] Determine that the waypoints are logical in location, in the correct order, and their

orientation to each other is as found on the procedure chart, both laterally and vertically.

NOTE−

There is no specific requirement to check each waypoint latitude and longitude, type of waypoint and/or altitude constraint,

only the general relationship of waypoints in the procedure, or the logic of an individual waypoint’ s location.

[3] If the cursory check of procedure logic or individual waypoint location, specified in [b]

above, indicates a potential error, do not use the retrieved procedure or waypoint until a verification of latitude

and longitude, waypoint type, and altitude constraints indicate full conformity with the published data.

(5) Air carrier and commercial operators must meet the appropriate provisions of their approved

operations specifications.

[a] During domestic operations for commerce or for hire, operators must have a second navigation

system capable of reversion or contingency operations.

[b] Operators must have two independent navigation systems appropriate to the route to be flown

or one system that is suitable and a second, independent backup system that allows the operator to proceed safely

to a suitable airport, complete an instrument approach; and the aircraft must have sufficient fuel (reference 14

CFR 121.349, 125.203, 129.17, and 135.165). These rules ensure the safety of the operation by preventing a

single point of failure.

NOTE−

An aircraft approved for multi-sensor navigation and equipped with a single navigation system must maintain an ability to

navigate or proceed safely in the event that any one component of the navigation system fails, including the flight

management system (FMS). Retaining an FMS-independent VOR capability would satisfy this requirement.

[c] The requirements for a second system apply to the entire set of equipment needed to achieve the

navigation capability, not just the individual components of the system such as the radio navigation receiver. For

example, to use two RNA V systems (e.g., GPS and DME/DME/IRU) to comply with the requirements, the

aircraft must be equipped with two independent radio navigation receivers and two independent navigation

computers (e.g., flight management systems (FMS)). Alternatively, to comply with the requirements using a

single RNA V system with an installed and operable VOR capability, the VOR capability must be independent

of the FMS.

[d] Due to low risk of disruption or manipulation of GPS signals beyond 50 NM offshore, FAA

differentiates between extended and non−extended over−water operations. To satisfy the requirement of two

independent navigation systems:

[1] For all extended over−water operations (defined in 14 CFR Part 1 as greater than 50 NM from

the nearest shoreline), operators may consider dual GPS −based systems to meet the “independent” criteria

stipulated by regulation, e.g. §121.349, §135.165.

[2] For all “non −extended overwater” operations, if the primary navigation system is

GPS−based, the second system must be independent of GPS (for example, VOR or DME/DME/IRU). This

allows continued navigation in case of failure of the GPS or WAAS services. Recognizing that GPS interference

and test events resulting in the loss of GPS services have become more common, the FAA requires operators

conducting IFR operations under 14 CFR 121.349, 125.203, 129.17 and 135.65 to retain a non−GPS navigation

capability, for example either DME/DME, IRU, or VOR for en route and terminal operations, and VOR and ILS

for final approach. Since this system is to be used as a reversionary capability, single equipage is sufficient.

3. Oceanic, Domestic, En Route, and Terminal Area Operations

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AIM2/20/251/22/26 AIM

(a) Conduct GPS IFR operations in oceanic areas only when approved avionics systems are installed.

TSO−C196() users and TSO−C129() GPS users authorized for Class A1, A2, B1, B2, C1, or C2 operations may

use GPS in place of another approved means of long−range navigation, such as dual INS. (See TBL 1 −1−5

and TBL 1−1−6.) Aircraft with a single installation GPS, meeting the above specifications, are authorized to

operate on short oceanic routes requiring one means of long−range navigation (reference AC 20-138, Appendix

1).

(b) Conduct GPS domestic, en route, and terminal IFR operations only when approved avionics

systems are installed. Pilots may use GPS via TSO−C129() authorized for Class A1, B1, B3, C1, or C3 operations

GPS via TSO-C196(); or GPS/WAAS with either TSO-C145() or TSO-C146(). When using TSO-C129() or

TSO-C196() receivers, the avionics n ecessary to receive all of the ground−based facilities appropriate for the

route to the destination airport and any required alternate airport must be installed and operational.

Ground−based facilities necessary for these routes must be operational.

(1) GPS en route IFR operations may be conducted in Alaska outside the operational service volume

of ground−based navigation aids when a TSO−C145() or TSO−C146() GPS/wide area augmentation system

(WAAS) system is installed and operating. WAAS is the U.S. version of a satellite-based augmentation system

(SBAS).

[a] In Alaska, aircraft may operate on GNSS Q-routes with GPS (TSO-C129 () or TSO-C196 ())

equipment while the aircraft remains in Air Traffic Control (ATC) radar surveillance or with GPS/WAAS

(TSO-C145 () or TSO-C146 ()) which does not require ATC radar surveillance.

[b] In Alaska, aircraft may only operate on GNSS T-routes with GPS/WAAS (TSO-C145 () or

TSO-C146 ()) equipment.

(2) Ground−based navigation equipment is not required to be installed and operating for en route IFR

operations when using GPS/W AAS navigation systems. All operators should ensure that an alternate means of

navigation is available in the unlikely event the GPS/W AAS navigation system becomes inoperative.

(3) Q-routes and T-routes outside Alaska. Q-routes require system performance currently met by GPS,

GPS/WAAS, or DME/DME/IRU RNA V systems that satisfy the criteria discussed in AC 90−100, U.S. Terminal

and En Route Area Navigation (RNA V) Operations. T-routes require GPS or GPS/WAAS equipment.

REFERENCE−

AIM, Para 5−3−4, Airways and Route Systems.

(c) GPS IFR approach/departure operations can be c onducted when approved avionics systems are

installed and the following requirements are met:

(1) The aircraft is TSO−C145() or TSO−C146() or TSO−C196() or TSO−C129() in Class A1, B1, B3,

C1, or C3; and

(2) The approach/departure must be retrievable from the current airborne navigation database in the

navigation computer. The system must be able to retrieve the procedure by name from the aircraft navigation

database. Manual entry of waypoints using latitude/longitude or place/bearing is not permitted for approach

procedures.

(3) The authorization to fly instrument approaches/departures with GPS is limited to U.S. airspace.

(4) The use of GPS in any other airspace must be expressly authorized by the FAA Administrator.

(5) GPS instrument approach/departure operations outside the U.S. must be authorized by the

appropriate sovereign authority.

4. Departures and Instrument Departure Procedures (DPs)

The GPS receiver must be set to terminal (±1 NM) CDI sensitivity and the navigation routes contained in the

database in order to fly published IFR charted departures and DPs. Terminal RAIM s hould be automatically

provided by the receiver. (Terminal RAIM for departure may not be available unless the waypoints are part of

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the active flight plan rather than proceeding direct to the first destination.) Certain segments of a DP may require

some manual intervention by the pilot, especially when radar vectored to a course or required to intercept a

specific course to a waypoint. The database may not contain all of the transitions or departures from all runways

and some GPS receivers do not contain DPs in the database. It is necessary that helicopter procedures be flown

at 70 knots or less since helicopter departure procedures and missed approaches use a 20:1 obstacle clearance

surface (OCS), which is double the fixed −wing OCS, and turning areas are based on this speed as well.

5. GPS Instrument Approach Procedures

(a) GPS overlay approaches are designated non−precision instrument approach procedures that pilots are

authorized to fly using GPS avionics. Localizer (LOC), localizer type directional aid (LDA), and simplified

directional facility (SDF) procedures are not authorized. Overlay procedures are identified by the “name of

the procedure” and “or GPS” (e.g., VOR/DME or GPS RWY 15) in the title. Authorized procedures must be

retrievable from a current onboard navigation databa se. The navigation database may also enhance position

orientation by displaying a map containing information on conventional NA V AID approaches. This approach

information should not be confused with a GPS overlay approach (see the receiver operating manual, AFM,

or AFM Supplement for details on how to identify these approaches in the navigation database).

NOTE−

Overlay approaches do not adhere to the design criteria described in paragraph 5 −4−5m, Area Navigation (RNAV)

Instrument Approach Charts, for stand−alone GPS approaches. Overlay approach criteria is based on the design criteria

used for ground−based NAVAID approaches.

(b) Stand−alone approach procedures specifically designed for GPS systems have replaced many of the

original overlay approaches. All approaches that contain “GPS” in the title (e.g., “VOR or GPS RWY 24,” “GPS

RWY 24,” or “RNAV (GPS) RWY 24”) can be flown using GPS. GPS−equipped aircraft do not need underlying

ground−based NA V AIDs or associated aircraft avionics to fly the approach. Monitoring the underlying approach

with ground−based NA V AIDs is suggested when able. Existing overlay approaches may be requested using the

GPS title; for example, the VOR or GPS RWY 24 may be requested as “GPS RWY 24.” Some GPS procedures

have a Terminal Arrival Area (TAA) with an underlining RNA V approach.

(c) For flight planning purposes, TSO-C129() and TSO-C196() −equipped users (GPS users) whose

navigation systems have fault detection and exclusion (FDE) capability, who perform a preflight RAIM

prediction for the approach integrity at the airport where the RNA V (GPS) approach will be flown, and have

proper knowledge and any required training and/or approval to conduct a GPS-based IAP, may file based on

a GPS−based IAP at either the destination or the alternate airport, but not at both locations. At the alternate

airport, pilots may plan for:

(1) Lateral navigation (LNA V) or circling minimum descent altitude (MDA);

(2) LNA V/vertical navigation (LNA V/VNA V) DA, if equipped with and using approved barometric

vertical navigation (baro-VNA V) equipment;

(3) RNP 0.3 DA on an RNA V (RNP) IAP, if they are specifically authorized users using approved

baro-VNA V equipment and the pilot has verified required navigation performance (RNP) availability through

an approved prediction program.

(d) If the above conditions cannot be met, any required alternate airport must have an approved

instrument approach procedure other than GPS−based that is anticipated to be operational and available at the

estimated time of arrival, and which the aircraft is equipped to fly.

(e) Procedures for Accomplishing GPS Approaches

(1) An RNA V (GPS) procedure may be associated with a Terminal Arrival Area (TAA). The basic

design of the RNA V procedure is the “T” design or a modification of the “T” (See Paragraph 5-4-5d, Terminal

Arrival Area (TAA), for complete information).

(2) Pilots cleared by ATC for an RNA V (GPS) approach should fly the full approach from an Initial

Approach W aypoint (IAWP) or feeder fix. Randomly joining an approach at an intermediate fix does not assure

terrain clearance.

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(3) When an approach has been loaded in the navigation system, GPS receivers will give an “arm”

annunciation 30 NM straight line distance from the airport/heliport reference point. Pilots should arm the

approach mode at this time if not already armed (some receivers arm automatically). Without arming, the

receiver will not change from en route CDI and RAIM sensitivity of ±5 NM either side of centerline to ±1 NM

terminal sensitivity. Where the IAWP is inside this 30 mile point, a CDI sensitivity change will occur once the

approach mode is armed and the aircraft is inside 30 NM. Where the IAWP is beyond 30 NM from the

airport/heliport reference point and the approach is armed, the CDI sensitivity will not change until the aircraft

is within 30 miles of the airport/heliport reference point. Feeder route obstacle clearance is predicated on the

receiver being in terminal (±1 NM) CDI sensitivity and RAIM within 30 NM of the airport/heliport reference

point; therefore, the receiver should always be armed (if required) not later than the 30 NM annunciation.

(4) The pilot must be aware of what bank angle/turn rate the particular receiver uses to compute turn

anticipation, and whether wind and airspeed are included in the receiver’s calculations. This information should

be in the receiver operating manual. Over or under banking the turn onto the final approach course may

significantly delay getting on course and may result in high descent rates to achieve the next segment altitude.

(5) When within 2 NM of the Final Approach Waypoint (FAWP) with the approach mode armed, the

approach mode will switch to active, which results in RAIM and CDI changing to approach sensitivity.

Beginning 2 NM prior to the FAWP, the full scale CDI sensitivity will smoothly change from ±1 NM to ±0.3

NM at the FAWP. As sensitivity changes from ±1 NM to ±0.3 NM approaching the FAWP, with the CDI not

centered, the corresponding increase in CDI displacement may give the impression that the aircraft is moving

further away from the intended course even though it is on an acceptable intercept heading. Referencing the

digital track displacement information (cross track error), if it is available in the approach mode, may help the

pilot remain position oriented in this situation. Being established on the final approach course prior to the

beginning of the sensitivity change at 2 NM will help prevent problems in interpreting the CDI display during

ramp down. Therefore, requesting or accepting vectors which will cause the aircraft to intercept the final

approach course within 2 NM of the FAWP is not recommended.

(6) When receiving vectors to final, most receiver operating manuals suggest placing the receiver in

the non−sequencing mode on the FAWP and manually setting the course. This provides an extended final

approach course in cases where the aircraft is vectored onto the final approach course outside of any existing

segment which is aligned with the runway. Assigned altitudes must be maintained until established on a

published segment of the approach. Required altitudes at waypoints outside the FAWP or stepdown fixes must

be considered. Calculating the distance to the FAWP may be required in order to descend at the proper location.

(7) Overriding an automatically selected sensitivity during an approach will cancel the approach mode

annunciation. If the approach mode is not armed by 2 NM prior to the F AWP, the approach mode will not become

active at 2 NM prior to the FAWP, and the equipment will flag. In these conditions, the RAIM and CDI sensitivity

will not ramp down, and the pilot should not descend to MDA, but fly to the MAWP and execute a missed

approach. The approach active annunciator and/or the receiver should be checked to ensure the approach mode

is active prior to the FAWP.

(8) Do not attempt to fly an approach unless the procedure in the onboard database is current and

identified as “GPS” on the approach chart. The navigation database may contain information a bout

non−overlay approach procedures that enhances position orientation generally by providing a map, while flying

these approaches using conventional NA V AIDs. This approach information should not be confused with a GPS

overlay approach (see the receiver operating manual, AFM, or AFM Supplement for details on how to identify

these procedures in the navigation database). Flying point to point on the approach does not assure compliance

with the published approach procedure. The proper RAIM sensitivity will not be available and the CDI sensitivity

will not automatically change to ±0.3 NM. Manually setting CDI sensitivity does not automatically change the

RAIM sensitivity on some receivers. Some existing non −precision approach procedures cannot be coded for

use with GPS and will not be available as overlays.

(9) Pilots should pay particular attention to the exact operation of their GPS receivers for performing

holding patterns and in the case of overlay approaches, operations such as procedure turns. These procedures

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may require manual intervention by the pilot to stop the sequencing of waypoints by the receiver and to resume

automatic GPS navigation sequencing once the maneuver is complete. The same waypoint may appear in the

route of flight more than once consecutively (for example, IAWP, FAWP, MAHWP on a procedure turn). Care

must be exercised to ensure that the receiver is sequenced to the appropriate waypoint for the segment of the

procedure being flown, especially if one or more fly−overs are skipped (for example, FAWP rather than IAWP

if the procedure turn is not flown). The pilot may have to sequence past one or more fly −overs of the same

waypoint in order to start GPS automatic sequencing at the proper place in the sequence of waypoints.

(10) Incorrect inputs into the GPS receiver are especially critical during approaches. In some cases,

an incorrect entry can cause the receiver to leave the approach mode.

(11) A fix on an overlay approach identified by a DME fix will not be in the waypoint sequence on the

GPS receiver unless there is a published name assigned to it. When a name is assigned, the along track distance

(ATD) to the waypoint may be zero rather than the DME stated on the approach chart. The pilot should be alert

for this on any overlay procedure where the original approach used DME.

(12) If a visual descent point (VDP) is published, it will not be included in the sequence of waypoints.

Pilots are expected to use normal piloting techniques for beginning the visual descent, such as ATD.

(13) Unnamed stepdown fixes in the final approach segment may or may not be coded in the waypoint

sequence of the aircraft’s navigation database and must be identified using ATD. Stepdown fixes in the final

approach segment of RNA V (GPS) approaches are being named, in addition to being identified by ATD.

However, GPS avionics may or may not accommodate waypoints between the FAF and MAP. Pilots must know

the capabilities of their GPS equipment and continue to identify stepdown fixes using ATD when necessary.

(f) Missed Approach

(1) A GPS missed approach requires pilot action to sequence the receiver past the MAWP to the

missed approach portion of the procedure. The pilot must be thoroughly familiar with the activation procedure

for the particular GPS receiver installed in the aircraft and must initiate appropriate action after the MAWP.

Activating the missed approach prior to the MAWP will cause CDI sensitivity to immediately change to terminal

(±1NM) sensitivity and the receiver will continue to navigate to the MAWP . The receiver will not sequence

past the MAWP. Turns should not begin prior to the MAWP. If the missed approach is not activated, the GPS

receiver will display an extension of the inbound final approach course and the ATD will increase from the

MAWP until it is manually sequenced after crossing the MAWP.

(2) Missed approach routings in which the first track is via a course rather than direct to the next

waypoint require additional action by the pilot to set the course. Being familiar with all of the inputs required

is especially critical during this phase of flight.

(g) Receiver Autonomous Integrity Monitoring (RAIM)

(1) RAIM outages may occur due to an insufficient number of satellites or due to unsuitable satellite

geometry which causes the error in the position solution to become too large. Loss of satellite reception and

RAIM warnings may occur due to aircraft dynamics (changes in pitch or bank angle). Antenna location on the

aircraft, satellite position relative to the horizon, and aircraft attitude may affect reception of one or more

satellites. Since the relative positions of the satellites are constantly changing, prior experience with the airport

does not guarantee reception at all times, and RAIM availability should always be checked.

(2) Civilian pilots may obtain GPS RAIM availability information for nonprecision approach

procedures by using a manufacturer−supplied RAIM prediction tool, or using the Service Availability Prediction

Tool (SAPT) on the FAA en route and terminal RAIM prediction website. Pilots can also request GPS RAIM

aeronautical information from a flight service station during preflight briefings. GPS RAIM aeronautical

information can be obtained for a period of 3 hours (for example, if you are scheduled to arrive at 1215 hours,

then the GPS RAIM information is available from 1100 to 1400 hours) or a 24−hour timeframe at a particular

airport. FAA briefers will provide RAIM information for a period of 1 hour before to 1 hour after the ETA hour,

unless a specific timeframe is requested by the pilot. If flying a published GPS departure, a RAIM prediction

should also be requested for the departure airport.

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AIM2/20/251/22/26 AIM

(3) The military provides airfield specific GPS RAIM NOTAMs for nonprecision approach procedures

at military airfields. The RAIM outages are issued as M−series NOTAMs and may be obtained for up to 24 hours

from the time of request.

(4) Receiver manufacturers and/or database suppliers may supply “NOTAM” type information

concerning database errors. Pilots should check these sources when available, to ensure that they have the most

current information concerning their electronic database.

(5) If RAIM is not available, use another type of navigation and approach system; select another route

or destination; or delay the trip until RAIM is predicted to be available on arrival. On longer flights, pilots should

consider rechecking the RAIM prediction for the destination during the flight. This may provide an early

indication that an unscheduled satellite outage has occurred since takeoff.

(6) If a RAIM failure/status annunciation occurs prior to the final approach waypoint (FAWP), the

approach should not be completed since GPS no longer provides the required integrity. The receiver performs

a RAIM prediction by 2 NM prior to the FAWP to ensure that RAIM is available as a condition for entering the

approach mode. The pilot should ensure the receiver has sequenced from “Armed” to “Approach” prior to the

FAWP (normally occurs 2 NM prior). Failure to sequence may be an indication of the detection of a satellite

anomaly, failure to arm the receiver (if required), or other problems which preclude flying the approach.

(7) If the receiver does not sequence into the approach mode or a RAIM failure/status annunciation

occurs prior to the FAWP, the pilot must not initiate the approach nor descend, but instead, proceed to the missed

approach waypoint (MAWP) via the FAWP, perform a missed approach, and contact ATC as soon as practical.

The GPS receiver may continue to operate after a RAIM flag/status annunciation appears, but the navigation

information should be considered advisory only. Refer to the receiver operating manual for specific indications

and instructions associated with loss of RAIM prior to the FAF.

(8) If the RAIM flag/status annunciation appears after the FAWP, the pilot should initiate a climb and

execute the missed approach. The GPS receiver may continue to operate after a RAIM flag/status annunciation

appears, but the navigation information should be considered advisory only. Refer to the receiver operating

manual for operating mode information during a RAIM annunciation.

(h) Waypoints

(1) GPS receivers navigate from one defined point to another retrieved from the aircraft’s onboard

navigational database. These points are waypoints (5-letter pronounceable name), existing VHF intersections,

DME fixes with 5−letter pronounceable names and 3-letter NA V AID IDs. Each waypoint is a geographical

location defined by a latitude/longitude geographic coordinate. These 5−letter waypoints, VHF intersections,

5−letter pronounceable DME fixes and 3 −letter NA V AID IDs are published on various FAA aeronautical

navigation products (IFR Enroute Charts, VFR Charts, Terminal Procedures Publications, etc.).

(2) A Computer Navigation Fix (CNF) is also a point defined by a latitude/longitude coordinate and

is required to support Performance−Based Navigation (PBN) operations. The GPS receiver uses CNFs in

conjunction with waypoints to navigate from point to point. However, CNFs are not recognized by ATC. ATC

does not maintain CNFs in their database and they do not use CNFs for any air traffic control purpose. CNFs may

or may not be charted on FAA aeronautical navigation products, are listed in the chart legends, and are for

advisory purposes only. Pilots are not to use CNFs for point to point navigation (proceed direct), filing a flight

plan, or in aircraft/ATC communications. CNFs that do appear on aeronautical charts allow pilots increased

situational awareness by identifying points in the aircraft database route of flight with points on the aeronautical

chart. CNFs are random five-letter identifiers, not pronounceable like waypoints and placed in parenthesis.

Eventually, all CNFs will begin with the letters “CF” followed by three consonants (for example, CFWBG). This

five-letter identifier will be found next to an “x” on enroute charts and possibly on an approach chart. On

instrument approach procedures (charts) in the terminal procedures publication, CNFs may represent unnamed

DME fixes, beginning and ending points of DME arcs, and sensor (ground-based signal i.e., VOR, NDB, ILS)

final approach fixes on GPS overlay approaches. These CNFs provide the GPS with points on the procedure that

allow the overlay approach to mirror the ground-based sensor approach. These points should only be used by

Navigation Aids 1−1−31

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the GPS system for navigation and should not be used by pilots for any other purpose on the approach. The CNF

concept has not been adopted or recognized by the International Civil Aviation Organization (ICAO).

(3) GPS approaches use fly−over and fly−by waypoints to join route segments on an approach. Fly−by

waypoints connect the two segments by allowing the aircraft to turn prior to the current waypoint in order to roll

out on course to the next waypoint. This is known as turn anticipation and is compensated for in the airspace and

terrain clearances. The missed approach waypoint (MAWP) will always be a fly −over waypoint. A holding

waypoint will always be designed as a fly−over waypoint in the navigational database but may be charted as a

fly−by event unless the holding waypoint is used for another purpose in the procedure and both events require

the waypoint to be a fly−over event. Some waypoints may have dual use; for example, as a fly−by waypoint when

used as an IF for a NoPT route and as a fly−over waypoint when the same waypoint is also used as an IAF/IF

hold−in−lieu of PT. Since the waypoint can only be charted one way, when this situation occurs, the fly −by

waypoint symbol will be charted in all uses of the waypoint.

(4) Unnamed waypoints for each airport will be uniquely identified in the database. Although the

identifier may be used at different airports (for example, RW36 will be the identifier at each airport with a runway

36), the actual point, at each airport, is defined by a specific latitude/longitude coordinate.

(5) The runway threshold waypoint, normally the MAWP, may have a five −letter identifier (for

example, SNEEZ) or be coded as RW## (for example, RW36, RW36L). MAWPs located at the runway threshold

are being changed to the RW## identifier, while MAWPs not located at the threshold will have a five −letter

identifier. This may cause the approach chart to differ from the aircraft database until all changes are complete.

The runway threshold waypoint is also used as the center of the Minimum Safe Altitude (MSA) on most GPS

approaches.

(i) Position Orientation. Pilots should pay particular attention to position orientation while using

GPS. Distance and track information are provided to the next active waypoint, not to a fixed navigation aid.

Receivers may sequence when the pilot is not flying along an active route, such as when being vectored or

deviating for weather, due to the proximity to another waypoint in the route. This can be prevented by placing

the receiver in the non-sequencing mode. When the receiver is in the non-sequencing mode, bearing and

distance are provided to the selected waypoint and the receiver will not sequence to the next waypoint in the

route until placed back in the auto sequence mode or the pilot selects a different waypoint. The pilot may have

to compute the ATD to stepdown fixes and other points on overlay approaches, due to the r eceiver showing

ATD to the next waypoint rather than DME to the VOR or ILS ground station.

(j) Impact of Magnetic Variation on PBN Systems

(1) Differences may exist between PBN systems and the charted magnetic courses on ground−based

NA V AID instrument flight procedures (IFP), enrout e charts, approach charts, and Standard Instrument

Departure/Standard Terminal Arrival (SID/STAR) charts. These differences are due to the magnetic variance

used to calculate the magnetic course. Every leg of an instrument procedure is first computed along a desired

ground track with reference to true north. A magnetic variation correction is then applied to the true course in

order to calculate a magnetic course for publication. The type of procedure will determine what magnetic

variation value is added to the true course. A ground−based NA V AID IFP applies the facility magnetic variation

of record to the true course to get the charted magnetic course. Magnetic courses on PBN procedures are

calculated two different ways. SID/STAR procedures use the airport magnetic variation of record, while IFR

enroute charts use magnetic reference bearing. PBN systems make a correction to true north by adding a magnetic

variation calculated with an algorithm based on aircraft position, or by adding the magnetic variation coded in

their navigational database. This may result in the PBN system and the procedure designer using a different

magnetic variation, which causes the magnetic course displayed by the PBN system and the magnetic course

charted on the IFP plate to be different. It is important to understand, however, that PBN systems, (with the

exception of VOR/DME RNA V equipment) navigate by reference to true north and display magnetic course only

for pilot reference. As such, a properly functioning PBN system, containing a current and accurate

navigational database , should fly the correct ground track for any loaded instrument procedure, despite

differences in displayed magnetic course that may be attributed to magnetic variation application. Should

1−1−32 Navigation Aids

AIM2/20/251/22/26 AIM

significant differences between the approach chart and the PBN system avionics’ application of the navigation

database arise, the published approach chart, supplemented by NOTAMs, holds precedence.

(2) The course into a waypoint may not always be 180 degrees different from the course leaving the

previous waypoint, due to the PBN system avionics’ computation of geodesic paths, distance between

waypoints, and differences in magnetic variation application. Variations in distances may also occur since PBN

system distance−to−waypoint values are ATDs computed to the next waypoint and the DME values published

on underlying procedures are slant −range distances measured to the station. This difference increases with

aircraft altitude and proximity to the NA V AID.

(k) GPS Familiarization

Pilots should practice GPS approaches in visual meteorological conditions (VMC) until thoroughly proficient

with all aspects of their equipment (receiver and installation) prior to attempting flight in instrument

meteorological conditions (IMC). Pilots should be proficient in the following areas:

(1) Using the receiver autonomous integrity monitoring (RAIM) prediction function;

(2) Inserting a DP into the flight plan, including setting terminal CDI sensitivity, if required, and the

conditions under which terminal RAIM is available for departure;

(3) Programming the destination airport;

(4) Programming and flying the approaches (especially procedure turns and arcs);

(5) Changing to another approach after selecting an approach;

(6) Programming and flying “direct” missed approaches;

(7) Programming and flying “routed” missed approaches;

(8) Entering, flying, and exiting holding patterns, particularly on approaches with a second waypoint

in the holding pattern;

(9) Programming and flying a “route” from a holding pattern;

(10) Programming and flying an approach with radar vectors to the intermediate segment;

(11) Indication of the actions required for RAIM failure both before and after the FAWP; and

(12) Programming a radial and distance from a VOR (often used in departure instructions).

Navigation Aids 1−1−33

AIM 2/20/25

TBL 1−1−5

GPS IFR Equipment Classes/Categories

TSO−C129

Equipment

Class RAIM

Int. Nav. Sys. to

Prov. RAIM

Equiv.

Oceanic En Route Terminal

Non−precision

Approach

Capable

Class A − GPS sensor and navigation capability.

A1 yes yes yes yes yes

A2 yes yes yes yes no

Class B − GPS sensor data to an integrated navigation system (i.e., FMS, multi−sensor navigation system, etc.).

B1 yes yes yes yes yes

B2 yes yes yes yes no

B3 yes yes yes yes yes

B4 yes yes yes yes no

Class C − GPS sensor data to an integrated navigation system (as in Class B) which provides enhanced guidance to an autopilot, or

flight director, to reduce flight tech. errors. Limited to 14 CFR part 121 or equivalent criteria.

C1 yes yes yes yes yes

C2 yes yes yes yes no

C3 yes yes yes yes yes

C4 yes yes yes yes no

TBL 1−1−6

GPS Approval Required/Authorized Use

Equipment

Type1

Installation

Approval

Required

Operational

Approval

Required

IFR

En Route2

IFR

Terminal2

IFR

Approach3

Oceanic

Remote

In Lieu of

ADF and/or

DME3

Hand held4 X5

VFR Panel Mount4 X

IFR En Route

and Terminal

X X X X X

IFR Oceanic/

Remote

X X X X X X

IFR En Route,

Terminal, and

Approach

X X X X X X

NOTE−

1To determine equipment approvals and limitations, refer to the AFM, AFM supplements, or pilot guides.

2Requires verification of data for correctness if database is expired.

3Requires current database or verification that the procedure has not been amended since the expiration of the database.

4VFR and hand−held GPS systems are not authorized for IFR navigation, instrument approaches, or as a primary instrument

flight reference. During IFR operations they may be considered only an aid to situational awareness.

5Hand−held receivers require no approval. However, any aircraft modification to support the hand −held receiver;

i.e., installation of an external antenna or a permanent mounting bracket, does require approval.

1−1−18. Wide Area Augmentation System (WAAS)

a. General

1. The FAA developed the WAAS to improve the accuracy, integrity and availability of GPS signals. WAAS

will allow GPS to be used, as the aviation navigation system, from takeoff through approach when it is complete.

WAAS is a critical component of the FAA’s strategic objective for a seamless satellite navigation system for civil

aviation, improving capacity and safety.

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2/20/25 AIM

2. The International Civil Aviation Organization (ICAO) has defined Standards and Recommended

Practices (SARPs) for satellite−based augmentation systems (SBAS) such as WAAS. India and Europe are

building similar systems: EGNOS, the European Geostationary Navigation Overlay System; and India’s GPS

and Geo−Augmented Navigation (GAGAN) system. The merging of these systems will create an expansive

navigation capability similar to GPS, but with greater accuracy, availability, and integrity.

3. Unlike traditional ground−based navigation aids, WAAS will cover a more extensive service area.

Precisely surveyed wide−area reference stations (WRS) are linked to form the U.S. WAAS network. Signals from

the GPS satellites are monitored by these WRSs to determine satellite clock and ephemeris corrections and to

model the propagation effects of the ionosphere. Each station in the network relays the data to a wide−area master

station (WMS) where the correction information is computed. A correction message is prepared and uplinked

to a geostationary earth orbit satellite (GEO) via a GEO uplink subsystem (GUS) which is located at the ground

earth station (GES). The message is then broadcast on the same frequency as GPS (L1, 1575.42 MHz) to WAAS

receivers within the broadcast coverage area of the WAAS GEO.

4. In addition to providing the correction signal, the WAAS GEO provides an additional pseudorange

measurement to the aircraft receiver, improving the availability of GPS by providing, in effect, an additional GPS

satellite in view. The integrity of GPS is improved through real−time monitoring, and the accuracy is improved

by providing differential corrections to reduce errors. The performance improvement is sufficient to enable

approach procedures with GPS/WAAS glide paths (vertical guidance).

5. The FAA has completed installation of 3 GEO satellite links, 38 WRSs, 3 WMSs, 6 GES, and the required

terrestrial communications to support the WAAS network including 2 operational control centers. Prior to the

commissioning of the WAAS for public use, the FAA conducted a series of test and validation activities. Future

dual frequency operations are planned.

6. GNSS navigation, including GPS and WAAS, is referenced to the WGS−84 coordinate system. It should

only be used where the Aeronautical Information Publications (including electronic data and aeronautical charts)

conform to WGS−84 or equivalent. Other countries’ civil aviation authorities may impose additional limitations

on the use of their SBAS systems.

b. Instrument Approach Capabilities

1. A class of approach procedures which provide vertical guidance, but which do not meet the ICAO Annex

10 requirements for precision approaches has been developed to support satellite navigation use for aviation

applications worldwide. These procedures are not precision and are referred to as Approach with Vertical

Guidance (APV), are defined in ICAO Annex 6, and include approaches such as the LNAV/VNA V and localizer

performance with vertical guidance (LPV). These approaches provide vertical guidance, but do not meet the

more stringent standards of a precision approach. Properly certified WAAS receivers will be able to fly to LPV

minima and LNA V/VNA V minima, using a WAAS electronic glide path, which eliminates the errors that can

be introduced by using Barometric altimetry.

2. LPV minima takes advantage of the high accuracy guidance and increased integrity provided by WAAS.

This WAAS generated angular guidance allows the use of the same TERPS approach criteria used for ILS

approaches. LPV minima may have a decision altitude as low as 200 feet height above touchdown with visibility

minimums as low as 1/2 mile, when the terrain and airport infrastructure support the lowest minima. LPV minima

is published on the RNA V (GPS) approach charts (see paragraph 5 −4−5, Instrument Approach Procedure

Charts).

3. A different WAAS-based line of minima, called Localizer Performance (LP) is being added in locations

where the terrain or obstructions do not allow publication of vertically guided LPV minima. LP takes advantage

of the angular lateral guidance and smaller position errors provided by WAAS to provide a lateral only procedure

similar to an ILS Localizer. LP procedures may provide lower minima than a LNA V procedure due to the

narrower obstacle clearance surface.

NOTE−

WAAS receivers certified prior to TSO −C145b and TSO−C146b, even if they have LPV capability, do not contain LP

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capability unless the receiver has been upgraded. Receivers capable of flying LP procedures must contain a statement in

the Aircraft Flight Manual (AFM), AFM Supplement, or Approved Supplemental Flight Manual stating that the receiver has

LP capability, as well as the capability for the other WAAS and GPS approach procedure types.

4. WAAS provides a level of service that supports all phases of flight, including RNA V (GPS) approaches

to LNA V , LP , LNA V/VNA V , and LPV lines of minima, within system coverage. Some locations close to the edge

of the coverage may have a lower availability of vertical guidance.

c. General Requirements

1. WAAS avionics must be certified in accordance with Technical Standard Order (TSO) TSO −C145(),

Airborne Navigation Sensors Using the (GPS) Augmented by the Wide Area Augmentation System (WAAS);

or TSO−C146(), Stand−Alone Airborne Navigation Equipment Using the Global Positioning System (GPS)

Augmented by the Wide Area Augmentation System (WAAS), and installed in accordance with AC 20−138,

Airworthiness Approval of Positioning and Navigation Systems.

2. GPS/WAAS operation must be conducted in accordance with the FAA−approved aircraft flight manual

(AFM) and flight manual supplements. Flight manual supplements will state the level of approach procedure that

the receiver supports. IFR approved WAAS receivers support all GPS only operations as long as lateral capability

at the appropriate level is functional. WAAS monitors both GPS and WAAS satellites and provides integrity.

3. GPS/WAAS equipment is inherently capable of supporting oceanic and remote operations if the operator

obtains a fault detection and exclusion (FDE) prediction program.

4. Air carrier and commercial operators must meet the appropriate provisions of their approved operations

specifications.

5. Prior to GPS/WAAS IFR operation, the pilot must review appropriate Notices to Airmen (NOTAMs) and

aeronautical information. This information is available on request from a Flight Service Station. The FAA will

provide NOTAMs to advise pilots of the status of the WAAS and level of service available.

(a) The term MAY NOT BE A VBL is used in conjunction with WAAS NOTAMs and indicates that due

to ionospheric conditions, lateral guidance may still be available when vertical guidance is unavailable. Under

certain conditions, both lateral and vertical guidance may be unavailable. This NOTAM language is an advisory

to pilots indicating the expected level of WAAS service (LNA V/VNA V , LPV , LP) may not be available.

EXAMPLE−

!FDC FDC NAV WAAS VNAV/LPV/LP MINIMA MAY NOT BE AVBL 1306111330-1306141930EST

or

!FDC FDC NAV WAAS VNAV/LPV MINIMA NOT AVBL, WAAS LP MINIMA MAY NOT BE AVBL

1306021200-1306031200EST

WAAS MAY NOT BE A VBL NOTAMs are predictive in nature and published for flight planning purposes.

Upon commencing an approach at locations NOTAMed WAAS MAY NOT BE A VBL, if the WAAS avionics

indicate LNA V/VNA V or LPV service is available, then vertical guidance may be used to complete the approach

using the displayed level of service. Should an outage occur during the approach, reversion to LNA V minima

or an alternate instrument approach procedure may be required. When GPS testing NOTAMS are published and

testing is actually occurring, Air Traffic Control will advise pilots requesting or cleared for a GPS or RNA V

(GPS) approach that GPS may not be available and request intentions. If pilots have reported GPS anomalies,

Air Traffic Control will request the pilot’s intentions and/or clear the pilot for an alternate approach, if available

and operational.

(b) WAAS area-wide NOTAMs are originated when WAAS assets are out of service and impact the

service area. Area−wide WAAS NOT A V AILABLE (A VBL) NOTAMs indicate loss or malfunction of the

WAAS system. In flight, Air Traffic Control will advise pilots requesting a GPS or RNA V (GPS) approach of

WAAS NOT A VBL NOTAMs if not contained in the ATIS broadcast.

EXAMPLE−

For unscheduled loss of signal or service, an example NOTAM is: !FDC FDC NAV WAAS NOT AVBL 1311 160600−

1−1−36 Navigation Aids

2/20/25 AIM

1311191200EST.

For scheduled loss of signal or service, an example NOTAM is : !FDC FDC NAV WAAS NOT AVBL 1312041015-

1312082000EST.

(c) Site−specific WAAS MAY NOT BE A VBL NOTAMs indicate an expected level of service; for

example, LNA V/VNA V , LP, or LPV may not be available. Pilots must request site−specific WAAS NOTAMs

during flight planning. In flight, Air Traffic Control will not advise pilots of WAAS MAY NOT BE A VBL

NOTAMs.

NOTE−

Though currently unavailable, the F AA is updating its prediction tool software to provide this site-service in the future.

(d) Most of North America has redundant coverage by two or more geostationary satellites. One

exception is the northern slope of Alaska. If there is a problem with the satellite providing coverage to this area,

a NOTAM similar to the following example will be issued:

EXAMPLE−

!FDC 4/3406 (P AZA A0173/14) ZAN NAV WAAS SIGNAL MAY NOT BE AVBL NORTH OF LINE FROM 7000N150000W

TO 6400N16400W. RMK WAAS USERS SHOULD CONFIRM RAIM AVAILABILITY FOR IFR OPERATIONS IN THIS

AREA. T-ROUTES IN THIS SECTOR NOT AVBL. ANY REQUIRED ALTERNATE AIRPORT IN THIS AREA MUST HAVE

AN APPROVED INSTRUMENT APPROACH PROCEDURE OT HER THAN GPS THAT IS ANTICIP ATED TO BE

OPERATIONAL AND AVAILABLE AT THE ESTIMATED TIME OF ARRIVAL AND WHICH THE AIRCRAFT IS

EQUIPPED TO FLY. 1406030812-1406050812EST .

6. When GPS−testing NOTAMS are published and testing is actually occurring, Air Traffic Control will

advise pilots requesting or cleared for a GPS or RNA V (GPS) approach that GPS may not be available and request

intentions. If pilots have reported GPS anomalies, Air Traffic Control will request the pilot’s intentions and/or

clear the pilot for an alternate approach, if available and operational.

EXAMPLE−

Here is an example of a GPS testing NOTAM:

!GPS 06/001 ZAB NAV GPS (INCLUDING WAAS, GBAS, AND ADS-B) MAY NOT BE AVAILABLE WITHIN A 468NM

RADIUS CENTERED AT 330702N1062540W (TCS 093044) FL400-UNL DECREASING IN AREA WITH A DECREASE

IN ALTITUDE DEFINED AS: 425NM RADIUS AT FL250, 360NM RADIUS AT 10000FT, 354NM RADIUS AT 4000FT

AGL, 327NM RADIUS AT 50FT AGL. 1406070300-1406071200.

7. When the approach chart is annotated with the

symbol, site−specific WAAS MAY NOT BE A VBL

NOTAMs or Air Traffic advisories are not provided for outages in WAAS LNA V/VNA V and LPV vertical

service. Vertical outages may occur daily at these locations due to being close to the edge of WAAS system

coverage. Use LNA V or circling minima for flight planning at these locations, whether as a destination or

alternate. For flight operations at these locations, when the WAAS avionics indicate that LNAV/VNA V or LPV

service is available, then the vertical guidance may be used to complete the approach using the displayed level

of service. Should an outage occur during the procedure, reversion to LNA V minima may be required.

NOTE−

Area−wide WAAS NOT AVBL NOTAMs apply to all airports in the WAAS NOT AVBL area designated in the NOTAM,

including approaches at airports where an approach chart is annotated with the

symbol.

8. GPS/WAAS was developed to be used within GEO coverage over North America without the need for

other radio navigation equipment appropriate to the route of flight to be flown. Outside the WAAS coverage or

in the event of a WAAS failure, GPS/WAAS equipment reverts to GPS −only operation and satisfies the

requirements for basic GPS equipment. (See paragraph 1−1−17 for these requirements).

9. Unlike TSO−C129 avionics, which were certified as a supplement to other means of navigation, WAAS

avionics are evaluated without reliance on other navigation systems. As such, installation of WAAS avionics

does not require the aircraft to have other equipment appropriate to the route to be flown. (See paragraph

1−1−17 d for more information on equipment requirements.)

(a) Pilots with W AAS receivers may flight plan to use any instrument approach procedure authorized for

use with their WAAS avionics as the planned approach at a required alternate, with the following restrictions.

Navigation Aids 1−1−37

AIM 2/20/25

When using WAAS at an alternate airport, flight planning must be based on flying the RNA V (GPS) LNA V or

circling minima line, or minima on a GPS approach procedure, or conventional approach procedure with “or

GPS” in the title. Code of Federal Regulation (CFR) part 91 non−precision weather requirements must be used

for planning. Upon arrival at an alternate, when the WAAS navigation system indicates that LNA V/VNA V or

LPV service is available, then vertical guidance may be used to complete the approach using the displayed level

of service. The FAA has begun removing the

NA (Alternate Minimums Not Authorized) symbol from select

RNA V (GPS) and GPS approach procedures so they may be used by approach approved WAAS receivers at

alternate airports. Some approach procedures will still require the

NA for other reasons, such as no weather

reporting, so it cannot be removed from all procedures. Since every procedure must be individually evaluated,

removal of the

NA from RNA V (GPS) and GPS procedures will take some time.

NOTE−

Properly trained and approved, as required, TSO-C145() and TSO-C146() equipped users (WAAS users) with and using

approved baro-VNAV equipment may plan for LNAV/VNAV DA at an alternate airport. Specifically authorized WAAS users

with and using approved baro-VNAV equipment may also plan for RNP 0.3 DA at the alternate airport as long as the pilot

has verified RNP availability through an approved prediction program.

d. Flying Procedures with WAAS

1. WAAS receivers support all basic GPS approach functions and provide additional capabilities. One of

the major improvements is the ability to generate glide path guidance, independent of ground equipment or

barometric aiding. This eliminates several problems such as hot and cold temperature effects, incorrect altimeter

setting, or lack of a local altimeter source. It also allows approach procedures to be built without the cost of

installing ground stations at each airport or runway. Some approach certified receivers may only generate a glide

path with performance similar to Baro−VNA V and are only approved to fly the LNA V/VNA V line of minima

on the RNA V (GPS) approach charts. Receivers with additional capability (including faster update rates and

smaller integrity limits) are approved to fly the LPV line of minima. The lateral integrity changes dramatically

from the 0.3 NM (556 meter) limit for GPS, LNA V , and LNA V/VNA V approach mode, to 40 meters for LPV .

It also provides vertical integrity monitoring, which bounds the vertical error to 50 meters for LNAV/VNA V and

LPVs with minima of 250’ or above, and bounds the vertical error to 35 meters for LPVs with minima below

250’.

2. When an approach procedure is selected and active, the receiver will notify the pilot of the most accurate

level of service supported by the combination of the W AAS signal, the receiver, and the selected approach, using

the naming conventions on the minima lines of the selected approach procedure. For example, if an approach

is published with LPV minima and the receiver is only certified for LNAV/VNA V , the equipment would indicate

“LNA V/VNA V available,” even though the WAAS signal would support LPV . If flying an existing

LNA V/VNA V procedure with no LPV minima, the receiver will notify the pilot “LNAV/VNA V available,” even

if the receiver is certified for LPV and the signal supports LPV . If the signal does not support vertical guidance

on procedures with LPV and/or LNA V/VNA V minima, the receiver annunciation will read “LNA V available.”

On lateral only procedures with LP and LNA V minima the receiver will indicate “LP available” or “LNA V

available” based on the level of lateral service available. Once the level of service notification has been given,

the receiver will operate in this mode for the duration of the approach procedure, unless that level of service

becomes unavailable. The receiver cannot change back to a more accurate level of service until the next time an

approach is activated.

NOTE−

Receivers do not “fail down” to lower levels of service once the approach has been activated. If only the vertical off flag

appears, the pilot may elect to use the LNAV minima if the rules under which the flight is operating allow changing the type

of approach being flown after commencing the procedure. If the lateral integrity limit is exceeded on an LP approach, a

missed approach will be necessary since there is no way to reset the lateral alarm limit while the approach is active.

3. Another additional feature of WAAS receivers is the ability to exclude a bad GPS signal and continue

operating normally. This is normally accomplished by the WAAS correction information. Outside WAAS

coverage or when WAAS is not available, it is accomplished through a receiver algorithm called FDE. In most

1−1−38 Navigation Aids

2/20/25 AIM

cases this operation will be invisible to the pilot since the receiver will continue to operate with other available

satellites after excluding the “bad” signal. This capability increases the reliability of navigation.

4. Both lateral and vertical scaling for the LNA V/VNA V and LPV approach procedures are different than

the linear scaling of basic GPS. When the complete published procedure is flown, ±1 NM linear scaling is

provided until two (2) NM prior to the FAF, where the sensitivity increases to be similar to the angular scaling

of an ILS. There are two differences in the WAAS scaling and ILS: 1) on long final approach segments, the initial

scaling will be ±0.3 NM to achieve equivalent performance to GPS (and better than ILS, which is less sensitive

far from the runway); 2) close to the runway threshold, the scaling changes to linear instead of continuing to

become more sensitive. The width of the final approach course is tailored so that the total width is usually 700

feet at the runway threshold. Since the origin point of the lateral splay for the angular portion of the final is not

fixed due to antenna placement like localizer, the splay angle can remain fixed, making a consistent width of final

for aircraft being vectored onto the final approach course on different length runways. When the complete

published procedure is not flown, and instead the aircraft needs to capture the extended final approach course

similar to ILS, the vector to final (VTF) mode is used. Under VTF, the scaling is linear at ±1 NM until the point

where the ILS angular splay reaches a width of ±1 NM regardless of the distance from the FAWP.

5. The W AAS scaling is also different than GPS TSO−C129() in the initial portion of the missed approach.

Two differences occur here. First, the scaling abruptly changes from the approach scaling to the missed approach

scaling, at approximately the departure end of the runway or when the pilot selects missed approach guidance

rather than ramping as GPS does. Second, when the first leg of the missed approach is a Track to Fix (TF) leg

aligned within 3 degrees of the inbound course, the receiver will change to 0.3 NM linear sensitivity until the

turn initiation point for the first waypoint in the missed approach procedure, at which time it will abruptly change

to terminal (±1 NM) sensitivity. This allows the elimination of close in obstacles in the early part of the missed

approach that may otherwise cause the DA to be raised.

6. There are two ways to select the final approach segment of an instrument approach. Most receivers use

menus where the pilot selects the airport, the runway, the specific approach procedure and finally the IAF, there

is also a channel number selection method. The pilot enters a unique 5−digit number provided on the approach

chart, and the receiver reca lls the matching final approach segment from the aircraft database. A list of

information including the available IAFs is displayed and the pilot selects the appropriate IAF. The pilot should

confirm that the correct final approach segment was loaded by cross checking the Approach ID, which is also

provided on the approach chart.

7. The Along−Track Distance (ATD) during the final approach segment of an LNA V procedure (with a

minimum descent altitude) will be to the MAWP. On LNA V/VNA V and LPV approaches to a decision altitude,

there is no missed approach waypoint so the along−track distance is displayed to a point normally located at the

runway threshold. In most cases, the MAWP for the LNA V approach is located on the runway threshold at the

centerline, so these distances will be the same. This distance will always vary slightly from any ILS DME that

may be present, since the ILS DME is located further down the runway. Initiation of the missed approach on the

LNA V/VNA V and LPV approaches is still based on reaching the decision altitude without any of the items listed

in 14 CFR section 91.175 being visible, and must not be delayed while waiting for the ATD to reach zero. The

WAAS receiver, unlike a GPS receiver, will automatically sequence past the MAWP if the missed approach

procedure has been designed for RNA V. The pilot may also select missed approach prior to the MAWP; however,

navigation will continue to the MAWP prior to waypoint sequencing taking place.

1−1−19. Ground Based Augmentation System (GBAS) Landing System (GLS)

a. A GBAS ground installation at an airport can provide localized, differential augmentation to the Global

Positioning System (GPS) signal−in−space enabling an aircraft’s GLS precision approach capability. Through

the GBAS service and the aircraft’s GLS installation a pilot may complete an instrument approach offering

three−dimensional angular, lateral, and vertical guidance for exact alignment and descent to a runway. The

operational benefits of a GLS approach are similar to the benefits of an ILS or LPV approach operation.

Navigation Aids 1−1−39

AIM 2/20/25

NOTE−

To remain consistent with international terminology, the F AA will use the term GBAS in place of the former term Local Area

Augmentation System (LAAS).

b. An aircraft’s GLS approach capability relies on the broadcast from a GBAS Ground Facility (GGF)

installation. The GGF installation includes at least four ground reference stations near the airport’s runway(s),

a corrections processor, and a VHF Data Broadcast (VDB) uplink antenna. To use the GBAS GGF output and

be eligible to conduct a GLS approach, the aircraft requires eligibility to conduct RNP approach (RNP APCH)

operations and must meet the additional, specific airworthiness requirements for installation of a GBAS receiver

intended to support GLS approach operations. When the aircraft achieves GLS approach eligibility, the aircraft’s

onboard navigation database may then contain published GLS instrument approach procedures.

c. During a GLS instrument approach procedure, the installation of an aircraft’s GLS capability provides the

pilot three−dimensional (3D) lateral and vertical navigation guidance much like an ILS instrument approach.

GBAS corrections augment the GPS signal−in−space by offering position corrections, ensures the availability

of enhanced integrity parameters, and then transmits the actual approach path definition over the VDB uplink

antenna. A single GBAS ground station can support multiple GLS approaches to one or more runways.

d. Through the GBAS ground station, a GLS approach offers a unique operational service volume distinct

from the traditional ILS approach service volume (see FIG 1−1−9). However, despite the unique service volume,

in the final approach segment, a GLS approach provides precise 3D angular lateral and vertical guidance

mimicking the precision guidance of an ILS approach.

e. Transitions to and segments of the published GLS instrument approach procedures may rely on use of

RNA V 1 or RNP 1 prior to an IAF. Then, during the approach procedure, prior to the aircraft entering the GLS

approach mode, a GLS approach procedure design uses the RNP APCH procedure design criteria to construct

the procedural path (the criteria used to publish procedures titled “RNA V (GPS)” in the US). Thus, a GLS

approach procedure may include paths requiring turns after the aircraft crosses the IAF, prior to the aircraft’s

flight guidance entering the GLS approach flight guidance mode. Likewise, the missed approach procedure for

a GLS approach procedure relies exclusively on the same missed approach criteria supporting an RNP APCH.

f. When maneuvering the aircraft in compliance with an ATC clearance to intercept a GLS approach prior to

the final approach segment (e.g. “being vectored”), the pilot should adhere to the clearance and ensure the aircraft

intercepts the extended GLS final approach course within the specified service volume. Once on the GLS final

approach course, the pilot should ensure the aircraft is in the GLS approach mode pr ior to reaching the

procedure’s glidepath intercept point. Once the aircraft is in the GLS flight guidance mode and captures the GLS

glidepath, the pilot should fly the GLS final approach segment using the same pilot techniques they use to fly

an ILS final approach or the final approach of an RNA V (GPS) approach flown to LPV minimums. See also the

Instrument Procedures Handbook for more information on how to conduct a GLS instrument approach

procedure.

1−1−40 Navigation Aids

AIM2/20/251/22/26 AIM

FIG 1−1−9

GLS Standard Approach Service Volume

1−1−20. Precision Approach Systems other than ILS and GLS

a. General

Approval and use of precision approach systems other than ILS and GLS require the issuance of special

instrument approach procedures.

b. Special Instrument Approach Procedure

1. Special instrument approach procedures must be issued to the aircraft operator if pilot training, aircraft

equipment, and/or aircraft performance is different than published procedures. Special instrument approach

procedures are not distributed for general public use. These procedures are issued to an aircraft operator when

the conditions for operations approval are satisfied.

2. General aviation operators requesting approval for special procedures should contact the local Flight

Standards District Office to obtain a letter of authorization. Air carrier operators requesting approval for use of

special procedures should contact their Certificate Holding District Office for authorization through their

Operations Specification.

REFERENCE−

AIM, Para 5−4−7, Instrument Approach Procedures, Subpara i.

Navigation Aids 1−1−41

2/20/25 AIM

Section 2. Performance −Based Navigation (PBN) and

Area Navigation (RNAV)

1−2−1. General

a. Introduction to PBN. As air travel has evolved, methods of navigation have improved to give operators

more flexibility. PBN exists under the umbrella of area navigation (RNA V). The term RNA V in this context, as

in procedure titles, just means “area navigation,” regardless of the equipment capability of the aircraft. (See

FIG 1−2−1.) Many operators have upgraded their systems to obtain the benefits of PBN. Within PBN there are

two main categories of navigation methods or specifications: area navigation (RNA V) and required navigation

performance (RNP). In this context, the term RNA V x means a specific navigation specification with a specified

lateral accuracy value. For an aircraft to meet the requirements of PBN, a specified RNA V or RNP accuracy must

be met 95 percent of the flight time. RNP is a PBN system that includes onboard performance monitoring and

alerting capability (for example, Receiver Autonomous Integrity Monitoring (RAIM)). PBN also introduces the

concept of navigation specifications (NavSpecs) which are a set of aircraft and aircrew requirements needed to

support a navigation application within a defined airspace concept. For both RNP and RNA V NavSpecs, the

numerical designation refers to the lateral navigation accuracy in nautical miles which is expected to be achieved

at least 95 percent of the flight time by the population of aircraft operating within the airspace, route, or

procedure. This information is detailed in International Civil Aviation Organization’s (ICAO) Doc 9613,

Performance−based Navigation (PBN) Manual and the latest FAA AC 90−105, Approval Guidance for RNP

Operations and Barometric Vertical Navigation in the U.S. National Airspace System and in Remote and Oceanic

Airspace.

FIG 1−2−1

Navigation Specifications

b. Area Navigation (RNA V)

1. General. RNAV is a method of navigation that permits aircraft operation on any desired flight path within

the coverage of ground− or space−based navigation aids or within the limits of the capability of self−contained

aids, or a combination of these. In the future, there will be an increased dependence on the use of RNA V in lieu

of routes defined by ground−based navigation aids. RNA V routes and terminal procedures, including departure

procedures (DPs) and standard terminal arrivals (STARs), are designed with RNA V systems in mind. There are

several potential advantages of RNA V routes and procedures:

Performance−Based Navigation (PBN) and Area Navigation (RNA V) 1−2−1

AIM 2/20/25

(a) Time and fuel savings;

(b) Reduced dependence on radar vectoring, altitude, and speed assignments allowing a reduction in

required ATC radio transmissions; and

(c) More efficient use of airspace.

In addition to information found in this manual, guidance for domestic RNA V DPs, STARs, and routes may also

be found in AC 90−100, U.S. Terminal and En Route Area Navigation (RNA V) Operations.

2. RNA V Operations. RNA V procedures, such as DPs and STARs, demand strict pilot awareness and

maintenance of the procedure centerline. Pilots should possess a working knowledge of their aircraft navigation

system to ensure RNA V procedures are flown in an appropriate manner. In addition, pilots should have an

understanding of the various waypoint and leg types used in RNAV procedures; these are discussed in more detail

below.

(a) Waypoints. A waypoint is a predetermined geographical position that is defined in terms of

latitude/longitude coordinates. Waypoints may be a simple named point in space or associated with existing

navaids, intersections, or fixes. A waypoint is most often used to indicate a change in direction, speed, or altitude

along the desired path. RNA V procedures make use of both fly−over and fly−by waypoints.

(1) Fly−by waypoints. Fly−by waypoints are used when an aircraft should begin a turn to the next

course prior to reaching the waypoint separating the two route segments. This is known as turn anticipation.

(2) Fly−over waypoints. Fly−over waypoints are used when the aircraft must fly over the point prior

to starting a turn.

NOTE−

FIG 1−2−2 illustrates several differences between a fly−by and a fly−over waypoint.

FIG 1−2−2

Fly−by and Fly−over Waypoints

(b) RNA V Leg Types. A leg type describes the desired path proceeding, following, or between

waypoints on an RNA V procedure. Leg types are identified by a two−letter code that describes the path (e.g.,

heading, course, track, etc.) and the termination point (e.g., the path terminates at an altitude, distance, fix, etc.).

Leg types used for procedure design are included in the aircraft navigation database, but not normally provided

on the procedure chart. The narrative depiction of the RNAV chart describes how a procedure is flown. The “path

and terminator concept” defines that every leg of a procedure has a termination point and some kind of path into

that termination point. Some of the available leg types are described below.

1−2−2 Performance−Based Navigation (PBN) and Area Navigation (RNA V)

2/20/25 AIM

(1) Track to Fix. A Track to Fix (TF) leg is intercepted and acquired as the flight track to the following

waypoint. Track to a Fix legs are sometimes called point −to−point legs for this reason. Narrative: “direct

ALPHA, then on course to BRAVO WP .” See FIG 1−2−3.

(2) Direct to Fix. A Direct to Fix (DF) leg is a path described by an aircraft’s track from an initial area

direct to the next waypoint. Narrative: “turn right direct BRAVO WP .” See FIG 1−2−4.

FIG 1−2−3

Track to Fix Leg Type

FIG 1−2−4

Direct to Fix Leg Type

(3) Course to Fix. A Course to Fix (CF) leg is a path that terminates at a fix with a specified course

at that fix. Narrative: “on course 150 to ALPHA WP .” See FIG 1−2−5.

Performance−Based Navigation (PBN) and Area Navigation (RNA V) 1−2−3

AIM 2/20/25

FIG 1−2−5

Course to Fix Leg Type

(4) Radius to Fix. A Radius to Fix (RF) leg is defined as a constant radius circular path around a

defined turn center that terminates at a fix. See FIG 1−2−6.

FIG 1−2−6

Radius to Fix Leg Type

(5) Heading. A Heading leg may be defined as, but not limited to, a Heading to Altitude (V A),

Heading to DME range (VD), and Heading to Manual Termination, i.e., Vector (VM). Narrative: “climb

heading 350 to 1500”, “heading 265, at 9 DME west of PXR VORTAC, right turn heading 360”, “fly heading

090, expect radar vectors to DRYHT INT.”

(c) Navigation Issues. Pilots should be aware of their navigation system inputs, alerts, and

annunciations in order to make better −informed decisions. In addition, the availability and suitability of

particular sensors/systems should be considered.

(1) GPS/WAAS. Operators using TSO−C129(), TSO−C196(), TSO−C145() or TSO−C146() systems

should ensure departure and arrival airports are entered to ensure proper RAIM availability and CDI sensitivity.

(2) DME/DME. Operators should be aware that DME/DME position updating is dependent on

navigation system logic and DME facility proximity, availability, geometry, and signal masking.

1−2−4 Performance−Based Navigation (PBN) and Area Navigation (RNA V)

2/20/25 AIM

(3) VOR/DME. Unique VOR characteristics may result in less accurate values from VOR/DME

position updating than from GPS or DME/DME position updating.

(4) Inertial Navigation. Inertial reference units and inertial navigation systems are often coupled

with other types of navigation inputs, e.g., DME/D ME or GPS, to improve overall navigation system

performance.

NOTE−

Specific inertial position updating requirements may apply.

(d) Flight Management System (FMS). An FMS is an integrated suite of sensors, receivers, and

computers, coupled with a navigation database. These systems generally provide performance and RNA V

guidance to displays and automatic flight control systems.

Inputs can be accepted from multiple sources such as GPS, DME, VOR, LOC and IRU. These inputs may be

applied to a navigation solution one at a time or in combination. Some FMSs provide for the detection and

isolation of faulty navigation information.

When appropriate navigation signals are available, FMSs will normally rely on GPS and/or DME/DME (that

is, the use of distance information from two or more DME stations) for position updates. Other inputs may also

be incorporated based on FMS system architecture and navigation source geometry.

NOTE−

DME/DME inputs coupled with one or more IRU(s) are often abbreviated as DME/DME/IRU or D/D/I.

(e) RNA V Navigation Specifications (Nav Specs)

Nav Specs are a set of aircraft and aircrew requirements needed to support a navigation application within a

defined airspace concept. For both RNP and RNA V designations, the numerical designation refers to the lateral

navigation accuracy in nautical miles which is expected to be achieved at least 95 percent of the flight time by

the population of aircraft operating within the airspace, route, or procedure. (See FIG 1−2−1.)

(1) RNA V 1. Typically RNA V 1 is used for DPs and STARs and appears on the charts. Aircraft must

maintain a total system error of not more than 1 NM for 95 percent of the total flight time.

(2) RNA V 2. Typically RNA V 2 is used for en route operations unless otherwise specified. T-routes

and Q-routes are examples of this Nav Spec. Aircraft must maintain a total system error of not more than 2 NM

for 95 percent of the total flight time.

(3) RNA V 10. Typically RNA V 10 is used in oceanic operations. See paragraph 4−7−1 for specifics

and explanation of the relationship between RNP 10 and RNA V 10 terminology.

1−2−2. Required Navigation Performance (RNP)

a. General. While both RNA V navigation specifications (NavSpecs) and RNP NavSpecs contain specific

performance requirements, RNP is RNA V with the added requirement for onboard performance monitoring and

alerting (OBPMA). RNP is also a statement of navigation performance necessary for operation within a defined

airspace. A critical component of RNP is the ability of the aircraft navigation system to monitor its achieved

navigation performance, and to identify for the pilot whether the operational requirement is, or is not, being met

during an operation. OBPMA capability therefore allows a lessened reliance on air traffic control intervention

and/or procedural separation to achieve the overall safety of the operation. RNP capability of the aircraft is a

major component in determining the separation criteria to ensure that the overall containment of the operation

is met. The RNP capability of an aircraft will vary depending upon the aircraft equipment and the navigation

infrastructure. For example, an aircraft may be eligible for RNP 1, but may not be capable of RNP 1 operations

due to limited NA V AID coverage or avionics failure. The Aircraft Flight Manual (AFM) or avionics documents

for your aircraft should specifically state the aircraft’s RNP eligibilities. Contact the manufacturer of the avionics

or the aircraft if this information is missing or incomplete. NavSpecs should be considered different from one

another, not “better” or “worse” based on the described lateral navigation accuracy. It is this concept that requires

Performance−Based Navigation (PBN) and Area Navigation (RNA V) 1−2−5

AIM 2/20/25

each NavSpec eligbility to be listed separately in the avionics documents or AFM. For example, RNP 1 is

different from RNA V 1, and an RNP 1 eligibility does NOT mean automatic RNP 2 or RNA V 1 eligibility. As

a safeguard, the FAA requires that aircraft navigation databases hold only those procedures that the aircraft

maintains eligibility for. If you look for a specific instrument procedure in your aircraft’s navigation database

and cannot find it, it’s likely that procedure contains PBN elements your aircraft is ineligible for or cannot

compute and fly. Further, optional capabilities such as Radius −to−fix (RF) turns or scalability should be

described in the AFM or avionics documents. Use the capabilities of your avionics suite to verify the appropriate

waypoint and track data after loading the procedure from your database.

b. PBN Operations.

1. Lateral Accuracy Values. Lateral Accuracy values are applicable to a selected airspace, route, or

procedure. The lateral accuracy value is a value typically expressed as a distance in nautical miles from the

intended centerline of a procedure, route, or path. RNP applications also account for potential errors at some

multiple of lateral accuracy value (for example, twice the RNP lateral accuracy values).

(a) RNP NavSpecs. U.S. standard NavSpecs supporting typical RNP airspace uses are as specified

below. Other NavSpecs may include different lateral accuracy values as identified by ICAO or other states. (See

FIG 1−2−1.)

(1) RNP Approach (RNP APCH). In the U.S., RNP APCH procedures are titled RNA V (GPS) and

offer several lines of minima to accommodate varying levels of aircraft equipage: either lateral navigation

(LNA V), LNA V/vertical navigation (LNAV/VNAV), Localizer Performance with Vertical Guidance (LPV), and

Localizer Performance (LP). GPS with or without Space−Based Augmentation System (SBAS) (for example,

WAAS) can provide the lateral information to support LNA V minima. LNAV/VNA V incorporates LNA V lateral

with vertical path guidance for systems and operators capable of either barometric or SBAS vertical. Pilots are

required to use SBAS to fly to the LPV or LP minima. RF turn capability is optional in RNP APCH eligibility.

This means that your aircraft may be eligible for RNP APCH operations, but you may not fly an RF turn unless

RF turns are also specifically listed as a feature of your avionics suite. GBAS Landing System (GLS) procedures

are also constructed using RNP APCH NavSpecs and provide precision approach capability. RNP APCH has

a lateral accuracy value of 1 in the terminal and missed approach segments and essentially scales to RNP 0.3 (or

40 meters with SBAS) in the final approach. (See paragraph 5 −4−18, RNP AR (Authorization Required)

Instrument Procedures.)

(2) RNP Authorization Required Approach (RNP AR APCH). In the U.S., RNP AR APCH

procedures are titled RNA V (RNP). These approaches have stringent equipage and pilot training standards and

require special FAA authorization to fly. Scalability and RF turn capabilities are mandatory in RNP AR APCH

eligibility. RNP AR APCH vertical navigation performance is based upon barometric VNA V or SBAS. RNP AR

is intended to provide specific benefits at specific locations. It is not intended for every operator or aircraft. RNP

AR capability requires specific aircraft performance, design, operational processes, training, and specific

procedure design criteria to achieve the required target level of safety. RNP AR APCH has lateral accuracy values

that can range below 1 in the terminal and missed approach segments and essentially scale to RNP 0.3 or lower

in the final approach. Before conducting these procedures, operators should refer to the latest AC 90 −101,

Approval Guidance for RNP Procedures with AR. (See paragraph 5−4−18.)

(3) RNP Authorization Required Departure (RNP AR DP). Similar to RNP AR approaches, RNP

AR departure procedures have stringent equipage and pilot training standards and require special FAA

authorization to fly. Scalability and RF turn capabilities is mandatory in RNP AR DP eligibility. RNP AR DP

is intended to provide specific benefits at specific locations. It is not intended for every operator or aircraft. RNP

AR DP capability requires specific aircraft performance, design, operational processes, training, and specific

procedure design criteria to achieve the required target level of safety. RNP AR DP has lateral accuracy values

that can scale to no lower than RNP 0.3 in the initial departure flight path. Before conducting these procedures,

operators should refer to the latest AC 90−101, Approval Guidance for RNP Procedures with AR. (See paragraph

5−4−18.)

1−2−6 Performance−Based Navigation (PBN) and Area Navigation (RNA V)

2/20/25 AIM

(4) Advanced RNP (A−RNP). Advanced RNP is a NavSpec with a minimum set of mandatory

functions enabled in the aircraft’s avionics suite. In the U.S., these minimum functions include capability to

calculate and perform RF turns, scalable RNP, and parallel offset flight path generation. Higher continuity (such

as dual systems) may be required for certain oceanic and remote continental airspace. Other “advanced” options

for use in the en route environment (such as fixed radius transitions and Time of Arrival Control) are optional

in the U.S. Typically, an aircraft eligible for A−RNP will also be eligible for operations comprising: RNP APCH,

RNP/RNA V 1, RNP/RNA V 2, RNP 4, and RNP/RNA V 10. A−RNP allows for scalable RNP lateral navigation

values (either 1.0 or 0.3) in the terminal environment. Use of these reduced lateral accuracies will normally

require use of the aircraft’s autopilot and/or flight director. See the latest AC 90−105 for more information on

A−RNP , including NavSpec bundling options, eligibility determinations, and operations approvals.

NOTE−

A−RNP eligible aircraft are NOT automatically eligible for RNP AR APCH or RNP AR DP operations, as RNP AR eligibility

requires a separate determination process and special F AA authorization.

(5) RNP 1. RNP 1 requires a lateral accuracy value of 1 for arrival and departure in the terminal area,

and the initial and intermediate approach phase when used on conventional procedures with PBN segments (for

example, an ILS with a PBN feeder, IAF, or missed approach). RF turn capability is optional in RNP 1 eligibility.

This means that your aircraft may be eligible for RNP 1 operations, but you may not fly an RF turn unless RF

turns are also specifically listed as a feature of your avionics suite.

(6) RNP 2. RNP 2 will apply to both domestic and oceanic/remote operations with a lateral accuracy

value of 2.

(7) RNP 4. RNP 4 will apply to oceanic and remote operations only with a lateral accuracy value of

4. RNP 4 eligibility will automatically confer RNP 10 eligibility.

(8) RNP 10. The RNP 10 NavSpec applies to certain oceanic and remote operations with a lateral

accuracy of 10. In such airspace, the RNA V 10 NavSpec will be applied, so any aircraft eligible for RNP 10 will

be deemed eligible for RNA V 10 operations. Further, any aircraft eligible for RNP 4 operations is automatically

qualified for RNP 10/ RNA V 10 operations. (See also the latest AC 91−70, Oceanic and Remote Continental

Airspace Operations, for more information on oceanic RNP/RNA V operations.)

(9) RNP 0.3. The RNP 0.3 NavSpec requires a lateral accuracy value of 0.3 for all authorized phases

of flight. RNP 0.3 is not authorized for oceanic, remote, or the final approach segment. Use of RNP 0.3 by

slow−flying fixed−wing aircraft is under consideration, but the RNP 0.3 NavSpec initially will apply only to

rotorcraft operations. RF turn capability is optional in RNP 0.3 eligibility. This means that your aircraft may be

eligible for RNP 0.3 operations, but you may not fly an RF turn unless RF turns are also specifically listed as

a feature of your avionics suite.

NOTE−

On terminal procedures or en route charts, do not confuse a charted RNP value of 0.30, or any standard final approach

course segment width of 0.30, with the NavSpec title “RNP 0.3.” Charted RNP values of 0.30 or below should contain two

decimal places (for example, RNP 0.15, or 0.10, or 0.30) whereas the NavSpec title will only state “RNP 0.3.”

(b) Application of Standard Lateral Accuracy Values. U.S. standard lateral accuracy values typically

used for various routes and procedures supporting RNA V operations may be based on use of a specific

navigational system or sensor such as GPS, or on multi−sensor RNA V systems having suitable performance.

(c) Depiction of PBN Requirements. In the U.S., PBN requirements like Lateral Accuracy Values or

NavSpecs applicable to a procedure will be depicted on affected charts and procedures. In the U.S., a specific

procedure’s Performance−Based Navigation (PBN) requirements will be prominently displayed in separate,

standardized notes boxes. For procedures with PBN elements, the “PBN box” will contain the procedure’s

NavSpec(s); and, if required: specific sensors or infrastructure needed for the navigation solution, any additional

or advanced functional requirements, the minimum RNP value, and any amplifying remarks. Items listed in this

PBN box are REQUIRED to fly the procedure’s PBN elements. For example, an ILS with an RNA V missed

approach would require a specific capability to fly the missed approach portion of the procedure. That required

Performance−Based Navigation (PBN) and Area Navigation (RNA V) 1−2−7

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