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Archive / FAA Helicopter Flying Handbook / FAA Helicopter Flying Handbook: Chapter 8 — Ground Procedures and Flight Preparations

FAA Helicopter Flying Handbook: Chapter 8 — Ground Procedures and Flight Preparations

FAA Helicopter Flying Handbook: Chapter 8 — Ground Procedures and Flight Preparations — Part 1

FAA-H-8083-21B (2019)

FAA-H-8083-21B

Helicopter Flying Handbook

Helicopter Flying Handbook

U.S. Department of Transportation

FEDERAL AVIATION ADMINISTRATION

Flight Standards Service

2019

iv

v

The Helicopter Flying Handbook is designed as a technical manual for applicants who are preparing for their private,

commercial, or flight instructor pilot certificates with a helicopter class rating. Certificated flight instructors may find

this handbook a valuable training aid, since detailed coverage of aerodynamics, flight controls, systems, performance,

flight maneuvers, emergencies, and aeronautical decision-making is included. Topics such as weather, navigation, radio

navigation and communications, use of flight information publications, and regulations are available in other Federal

Aviation Administration (FAA) publications.

This handbook conforms to pilot training and certification concepts established by the FAA. There are different ways of

teaching, as well as performing, flight procedures and maneuvers, and many variations in the explanations of aerodynamic

theories and principles. This handbook adopts a selective method and concept to flying helicopters. The discussion and

explanations reflect the most commonly used practices and principles. Occasionally the word “must” or similar language

is used where the desired action is deemed critical. The use of such language is not intended to add to, interpret, or relieve

a duty imposed by Title 14 of the Code of Federal Regulations (14 CFR). Persons working towards a helicopter rating are

advised to review the references from the applicable practical test standards (FAA-S-8081-3 for recreational applicants,

FAA-S-8081-15 for private applicants, and FAA-S-8081-16 for commercial applicants). Resources for study include

FAA-H-8083-25, Pilot’s Handbook of Aeronautical Knowledge, and FAA-H-8083-1, Weight and Balance Handbook, as

these documents contain basic material not duplicated herein. All beginning applicants should refer to FAA-H-8083-25,

Pilot’s Handbook of Aeronautical Knowledge, for study and basic library reference.

It is essential for persons using this handbook to become familiar with and apply the pertinent parts of 14 CFR and the

Aeronautical Information Manual (AIM). The AIM is available online at www.faa.gov. The current Flight Standards

Service airman training and testing material and learning statements for all airman certificates and ratings can be obtained

from www.faa.gov.

This handbook supersedes FAA-H-8083-21A, Helicopter Flying Handbook, dated 2012. Gyroplane information can be

found in the FAA-H-8083-20, Gyroplane Flying Handbook.

This handbook is available for download, in PDF format, from www.faa.gov.

This handbook is published by the United States Department of Transportation, Federal Aviation Administration, Airman

Testing Branch, P.O. Box 25082, Oklahoma City, OK 73125.

Comments regarding this publication should be emailed to [email protected].

Preface

vi

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The Helicopter Flying Handbook was produced by the Federal Aviation Administration (FAA) with the assistance of Safety

Research Corporation of America (SRCA). The FAA wishes to acknowledge the following contributors:

Federation of American Scientists (www.fas.org) for rotor system content used in Chapter 5

Kaman Aerospace, Helicopters Division for image of Kaman used in Chapter 5

Burkhard Domke (www.b-domke.de) for images of rotor systems (Chapters 1 and 4)

New Zealand Civil Aviation Authority for image of safety procedures for approaching a helicopter (Chapter 9)

Shawn Coyle of Eagle Eye Solutions, LLC for images and content used in Chapter 10

Dr. Pat Veillette for information used on decision-making (Chapter 13)

Additional appreciation is extended to the Helicopter Association International (HAI), United States Helicopter Safety Team

(USHST), Leonardo Helicopters, Aircraft Owners and Pilots Association (AOPA), and the AOPA Air Safety Foundation

for their technical support and input.

Acknowledgments

viii

ix

Table of Contents

Preface.....................................................................v

Acknowledgments ................................................vii

Chapter 1

Introduction to the Helicopter ............................1-1

Introduction ....................................................................1-1

Turbine Age ...................................................................1-2

Uses ................................................................................1-3

Rotor System ..................................................................1-3

Rotor Configurations ..................................................1-4

Tandem Rotor ........................................................1-4

Coaxial Rotors .......................................................1-4

Intermeshing Rotors ................................................1-4

Tail Rotor ...................................................................1-5

Controlling Flight...........................................................1-5

Cyclic ........................................................................1-5

Collective ...................................................................1-5

Antitorque Pedals .......................................................1-6

Throttle ......................................................................1-6

Flight Conditions ...........................................................1-6

Chapter Summary ..........................................................1-7

Chapter 2

Aerodynamics of Flight .......................................2-1

Introduction ....................................................................2-1

Forces Acting on the Aircraft ........................................2-2

Lift ..............................................................................2-3

Bernoulli’s Principle ...............................................2-3

Venturi Flow ...........................................................2-4

Newton’s Third Law of Motion ..............................2-5

Weight ........................................................................2-5

Thrust .........................................................................2-6

Drag ............................................................................2-6

Profile Drag ............................................................2-6

Induced Drag ..........................................................2-7

Parasite Drag ...........................................................2-7

Total Drag ...............................................................2-7

Airfoil ............................................................................2-7

Airfoil Terminology and Definitions .........................2-7

Airfoil Types ..............................................................2-8

Symmetrical Airfoil ................................................2-8

Nonsymmetrical Airfoil (Cambered) ......................2-8

Blade Twist ...............................................................2-9

Rotor Blade and Hub Definitions ...........................2-9

Airflow and Reactions in the Rotor Disk .......................2-9

Relative Wind .............................................................2-9

Rotational Relative Wind (Tip-Path Plane)................2-9

Resultant Relative Wind ...........................................2-11

Induced Flow (Downwash) ..................................2-11

Rotor Blade Angles ..................................................2-12

Angle of Incidence ................................................2-12

Angle of Attack .....................................................2-13

Powered Flight .............................................................2-14

Hovering Flight ............................................................2-14

Translating Tendency (Drift)....................................2-15

Pendular Action ........................................................2-15

Coning ......................................................................2-16

Coriolis Effect (Law of Conservation of Angular

Momentum) .............................................................2-16

Gyroscopic Precession .............................................2-17

Vertical Flight ..............................................................2-17

Forward Flight .............................................................2-17

Airflow in Forward Flight .......................................2-19

Advancing Blade .................................................2-19

Retreating Blade ..................................................2-19

Dissymmetry of Lift .............................................2-20

Translational Lift ......................................................2-21

Effective Translational Lift (ETL) ........................2-22

Translational Thrust ..............................................2-22

Induced Flow ............................................................2-23

Transverse Flow Effect ............................................2-23

Sideward Flight ............................................................2-23

Rearward Flight ...........................................................2-24

Turning Flight ..............................................................2-24

Autorotation .................................................................2-25

Vertical Autorotation ................................................2-25

Autorotation (Forward Flight) ..................................2-26

Chapter Summary ........................................................2-26

Chapter 3

Helicopter Flight Controls ..................................3-1

Introduction ....................................................................3-1

Collective Pitch Control .................................................3-2

Throttle Control .............................................................3-2

Governor/Correlator ......................................................3-2

Cyclic Pitch Control .......................................................3-3

Antitorque Pedals ...........................................................3-4

Heading Control .........................................................3-4

Chapter Summary ..........................................................3-5

x

Chapter 4

Helicopter Components, Sections,

and Systems ........................................................4-1

Introduction ....................................................................4-1

Airframe .........................................................................4-1

Fuselage .........................................................................4-2

Main Rotor System ........................................................4-2

Semirigid Rotor System .............................................4-2

Rigid Rotor System ....................................................4-3

Fully Articulated Rotor System ..................................4-4

Tandem Rotor .............................................................4-6

Coaxial Rotors ............................................................4-6

Intermeshing Rotors ...................................................4-6

Swash Plate Assembly ...................................................4-6

Freewheeling Unit ..........................................................4-7

Antitorque System .........................................................4-7

Fenestron ....................................................................4-8

NOTAR® ....................................................................................................4-8

Antitorque Drive Systems ..............................................4-8

Engines ...........................................................................4-8

Reciprocating Engines ................................................4-8

Turbine Engines .........................................................4-8

Compressor ...........................................................4-10

Combustion Chamber ...........................................4-10

Turbine ..................................................................4-10

Accessory Gearbox ...............................................4-10

Transmission System ...................................................4-10

Main Rotor Transmission .........................................4-11

Dual Tachometers .................................................4-11

Structural Design ..................................................4-12

Clutch .......................................................................4-12

Belt Drive Clutch ..................................................4-12

Centrifugal Clutch ................................................4-13

Fuel Systems ................................................................4-13

Fuel Supply System ..................................................4-13

Engine Fuel Control System ....................................4-14

Carburetor Ice ...........................................................4-14

Fuel Injection ............................................................4-15

Electrical Systems ........................................................4-16

Hydraulics ....................................................................4-16

Stability Augmentations Systems ................................4-17

Force Trim ................................................................4-17

Active Augmentation Systems ................................4-17

Autopilot ...................................................................4-18

Environmental Systems ...............................................4-18

Anti-Icing Systems .......................................................4-19

Engine Anti-Ice ........................................................4-19

Airframe Anti-Ice .....................................................4-19

Deicing ....................................................................4-19

Chapter Summary ........................................................4-19

Chapter 5

Rotorcraft Flight Manual .....................................5-1

Introduction ....................................................................5-1

Preliminary Pages ..........................................................5-2

General Information (Section 1) ....................................5-2

Operating Limitations (Section 2) .................................5-2

Instrument Markings ..................................................5-2

Airspeed Limitations ..................................................5-2

Altitude Limitations ...................................................5-3

Rotor Limitations .......................................................5-3

Powerplant Limitations ..............................................5-3

Weight and Loading Distribution ...............................5-4

Flight Limitations .......................................................5-4

Placards ......................................................................5-4

Emergency Procedures (Section 3) ................................5-4

Normal Procedures (Section 4) ......................................5-5

Performance (Section 5) ................................................5-5

Weight and Balance (Section 6) ....................................5-5

Aircraft and Systems Description (Section 7) ...............5-5

Handling, Servicing, and Maintenance (Section 8) .......5-5

Supplements (Section 9) ................................................5-6

Safety and Operational Tips (Section 10) ......................5-6

Chapter Summary ..........................................................5-6

Chapter 6

Weight and Balance ............................................6-1

Introduction ....................................................................6-1

Weight ............................................................................6-2

Basic Empty Weight ...................................................6-2

Maximum Gross Weight ............................................6-2

Weight Limitations .....................................................6-2

Balance ...........................................................................6-2

Center of Gravity ........................................................6-2

CG Forward of Forward Limit ...................................6-3

CG Aft of Aft Limit ...................................................6-3

Lateral Balance ...........................................................6-3

Weight and Balance Calculations ..................................6-4

Reference Datum ........................................................6-4

Chapter Summary ..........................................................6-4

Chapter 7

Helicopter Performance ......................................7-1

Introduction ....................................................................7-1

Factors Affecting Performance ......................................7-2

Moisture (Humidity) ..................................................7-2

Weight ........................................................................7-2

Winds .........................................................................7-2

Performance Charts ........................................................7-2

Height/Velocity Diagram ...........................................7-2

The Effect of Weight Versus Density Altitude .......7-3

Autorotational Performance .......................................7-4

xi

Hovering Performance ...............................................7-4

Sample Hover Problem 1 ........................................7-5

Sample Hover Problem 2 ........................................7-5

Sample Hover Problem 3 ........................................7-6

Climb Performance.....................................................7-6

Sample Cruise or Level Flight Problem .................7-8

Sample Climb Problem ...........................................7-8

Chapter Summary ..........................................................7-9

Chapter 8

Ground Procedures and Flight

Preparations.........................................................8-1

Introduction ....................................................................8-1

Preflight ..........................................................................8-2

Minimum Equipment Lists (MELs) and

Operations with Inoperative Equipment.....................8-2

Engine Start and Rotor Engagement ..............................8-3

Rotor Safety Considerations .......................................8-3

Aircraft Servicing .......................................................8-4

Safety in and Around Helicopters ..................................8-4

Ramp Attendants and Aircraft Servicing

Personnel ....................................................................8-4

Passengers ..................................................................8-4

Pilot at the Flight Controls .........................................8-6

After Landing and Securing .......................................8-6

Chapter Summary ..........................................................8-6

Chapter 9

Basic Flight Maneuvers ......................................9-1

Introduction ....................................................................9-1

The Four Fundamentals .................................................9-2

Guidelines ..................................................................9-2

Straight-and-Level Flight ...............................................9-3

Technique ...................................................................9-3

Common Errors ..........................................................9-3

Turns ..............................................................................9-3

Technique ...................................................................9-3

Slips ............................................................................9-4

Skids ...........................................................................9-4

Normal Climb ................................................................9-5

Technique ...................................................................9-5

Common Errors ..........................................................9-5

Normal Descent .............................................................9-5

Technique ...................................................................9-5

Common Errors ..........................................................9-6

Vertical Takeoff to a Hover ...........................................9-6

Technique ...................................................................9-6

Common Errors ..........................................................9-6

Hovering ........................................................................9-7

Technique ...................................................................9-7

Common Errors ..........................................................9-7

Hovering Turn ................................................................9-7

Technique ...................................................................9-7

Common Errors ..........................................................9-9

Hovering—Forward Flight ............................................9-9

Technique ...................................................................9-9

Common Errors ..........................................................9-9

Hovering—Sideward Flight ...........................................9-9

Technique ...................................................................9-9

Common Errors ........................................................9-10

Hovering—Rearward Flight ........................................9-10

Technique .................................................................9-10

Common Errors ........................................................9-10

Taxiing .........................................................................9-10

Hover Taxi ................................................................9-10

Air Taxi ....................................................................9-10

Technique .............................................................9-11

Common Errors ....................................................9-11

Surface Taxi .............................................................9-11

Technique .............................................................9-11

Common Errors ....................................................9-11

Normal Takeoff from a Hover .....................................9-12

Technique .................................................................9-12

Common Errors ........................................................9-12

Normal Takeoff from the Surface ................................9-13

Technique .................................................................9-13

Common Errors ........................................................9-13

Crosswind Considerations During Takeoffs ................9-13

Ground Reference Maneuvers .....................................9-13

Rectangular Course ..................................................9-14

Technique .............................................................9-14

Common Errors ....................................................9-15

S-Turns .....................................................................9-15

Technique .............................................................9-15

Common Errors ....................................................9-16

Turns Around a Point ...............................................9-16

Technique .............................................................9-16

Common Errors ...................................................9-17

Traffic Patterns .............................................................9-17

Approaches ..................................................................9-18

Normal Approach to a Hover ...................................9-19

Technique .............................................................9-19

Common Errors ....................................................9-19

Normal Approach to the Surface ..............................9-20

Technique .............................................................9-20

Common Errors ....................................................9-20

Crosswind During Approaches ................................9-20

Go-Around ...................................................................9-20

Chapter Summary ........................................................9-20

xii

Chapter 10

Advanced Flight Maneuvers .............................10-1

Introduction ..................................................................10-1

Reconnaissance Procedures .........................................10-2

High Reconnaissance ...............................................10-2

Low Reconnaissance ................................................10-2

Ground Reconnaissance ...........................................10-2

Maximum Performance Takeoff ..................................10-2

Technique .................................................................10-3

Common Errors ........................................................10-3

Running/Rolling Takeoff .............................................10-3

Technique .................................................................10-4

Common Errors ........................................................10-4

Rapid Deceleration or Quick Stop ..............................10-4

Technique .................................................................10-4

Common Errors ........................................................10-5

Steep Approach ............................................................10-5

Technique .................................................................10-6

Common Errors ........................................................10-6

Shallow Approach and Running/Roll-On Landing ......10-6

Technique .................................................................10-7

Common Errors ........................................................10-7

Slope Operations ..........................................................10-7

Slope Landing ..........................................................10-8

Technique .............................................................10-8

Common Errors ....................................................10-8

Slope Takeoff ...........................................................10-8

Technique .............................................................10-9

Common Errors ....................................................10-9

Confined Area Operations ...........................................10-9

Approach ................................................................10-10

Takeoff ..................................................................10-10

Common Errors ......................................................10-10

Pinnacle and Ridgeline Operations ............................10-11

Approach and Landing ...........................................10-11

Takeoff ...................................................................10-11

Common Errors ......................................................10-12

Chapter Summary ......................................................10-12

Chapter 11

Helicopter Emergencies and Hazards .............11-1

Introduction ..................................................................11-1

Autorotation .................................................................11-2

RPM Control ............................................................11-3

Risk Management during Autorotation Training ....11-3

Straight-In Autorotation ...........................................11-4

Technique (How to Practice) ................................11-4

Common Errors ....................................................11-5

Autorotation with Turns ...........................................11-6

Common Errors ....................................................11-7

Practice Autorotation with a Power Recovery ........11-7

Technique (How to Practice) ................................11-7

Common Errors ....................................................11-8

Practicing Power Failure in a Hover ........................11-8

Technique (How to Practice) ................................11-8

Common Errors ....................................................11-9

Vortex Ring State ........................................................11-9

Common Errors—Traditional Recovery ................11-10

Common Errors—Vuichard Recovery ...................11-10

Retreating Blade Stall ................................................11-10

Common Errors ......................................................11-11

Ground Resonance .....................................................11-11

Dynamic Rollover ......................................................11-11

Critical Conditions .................................................11-12

Cyclic Trim.............................................................11-12

Normal Takeoffs and Landings ..............................11-13

Slope Takeoffs and Landings .................................11-13

Use of Collective ....................................................11-13

Precautions .............................................................11-13

Low-G Conditions and Mast Bumping ......................11-14

Low Rotor RPM and Rotor Stall ...............................11-15

System Malfunctions .................................................11-16

Antitorque System Failure......................................11-16

Landing—Stuck Left Pedal ....................................11-17

Landing—Stuck Neutral or Right Pedal ...............11-17

Loss of Tail Rotor Effectiveness (LTE) .................11-18

Main Rotor Disk Interference (285–315°) ..........11-20

Weathercock Stability (120–240°) .....................11-20

Tail Rotor Vortex Ring State (210–330°) ...........11-21

LTE at Altitude ...................................................11-21

Reducing the Onset of LTE ................................11-21

Recovery Technique (Uncontrolled

Right Yaw) ..........................................................11-21

Main Drive Shaft or Clutch Failure ........................11-21

Hydraulic Failure ....................................................11-22

Governor or Fuel Control Failure ...........................11-22

Abnormal Vibration ...............................................11-22

Low-Frequency Vibrations .................................11-22

Medium- and High-Frequency Vibrations ..........11-23

Tracking and Balance .........................................11-23

Multiengine Emergency Operations ..........................11-23

Single-Engine Failure ............................................11-23

Dual-Engine Failure ..............................................11-23

Lost Procedures ..........................................................11-23

VFR Flight into Instrument Meteorological

Conditions ..................................................................11-24

Emergency Equipment and Survival Gear .................11-27

Chapter Summary ......................................................11-27

xiii

Chapter 12

Night Operations ...............................................12-1

Introduction ..................................................................12-1

Visual Deficiencies ......................................................12-2

Night Myopia ...........................................................12-2

Hyperopia .................................................................12-2

Astigmatism .............................................................12-2

Presbyopia ................................................................12-2

Vision in Flight ............................................................12-2

Visual Acuity ............................................................12-3

The Eye.....................................................................12-4

Cones ........................................................................12-4

Rods ..........................................................................12-4

Night Vision .................................................................12-4

Night Scanning .........................................................12-4

Obstruction Detection...............................................12-5

Aircraft Lighting.......................................................12-6

Visual Illusions .........................................................12-6

Relative-Motion Illusion ..........................................12-6

Confusion with Ground Lights .................................12-6

Reversible Perspective Illusion ................................12-6

Flicker Vertigo .........................................................12-7

Night Flight ..................................................................12-7

Preflight ....................................................................12-7

Cockpit Lights ..........................................................12-8

Engine Starting and Rotor Engagement ...................12-8

Taxi Technique .........................................................12-8

Night Traffic Patterns ...............................................12-8

Takeoff .....................................................................12-8

En Route Procedures ................................................12-9

Collision Avoidance at Night ...................................12-9

Approach and Landing .............................................12-9

Illusions Leading to Landing Errors .........................12-9

Featureless Terrain Illusion ................................12-10

Atmospheric Illusions .........................................12-10

Ground Lighting Illusions ...................................12-10

Helicopter Night VFR Operations .............................12-10

Chapter Summary ......................................................12-10

Chapter 13

Effective Aeronautical Decision-Making .........13-1

Introduction ..................................................................13-1

Aeronautical Decision-Making (ADM) .......................13-2

Scenario ....................................................................13-2

Trescott Tips .............................................................13-3

The Decision-Making Process..................................13-4

Defining the Problem ............................................13-4

Choosing a Course of Action ................................13-4

Implementing the Decision and Evaluating the

Outcome ................................................................13-4

Decision-Making Models .........................................13-5

Pilot Self-Assessment ..................................................13-6

Curiosity: Healthy or Harmful? ................................13-6

The PAVE Checklist ................................................13-6

Single-Pilot Resource Management .............................13-7

Risk Management ........................................................13-9

Four Risk Elements ..................................................13-9

Assessing Risk ........................................................13-10

Using the 3P Model to Form Good Safety

Habits .....................................................................13-11

Workload or Task Management .................................13-12

Situational Awareness ................................................13-13

Obstacles to Maintaining Situational

Awareness .............................................................13-13

Operational Pitfalls .................................................13-15

Controlled Flight Into Terrain (CFIT)

Awareness ..................................................................13-15

Automation Management ...........................................13-18

Chapter Summary ......................................................13-18

Glossary ..............................................................G-1

Index ......................................................................I-1

xiv

1-1

Chapter 1

Introduction to the Helicopter

Introduction

A helicopter is an aircraft that is lifted and propelled by one

or more horizontal rotors, each rotor consisting of two or

more rotor blades. Helicopters are classified as rotorcraft

or rotary-wing aircraft to distinguish them from fixed-wing

aircraft, because the helicopter derives its source of lift from

the rotor blades rotating around a mast. The word “helicopter”

is adapted from the French hélicoptère, coined by Gustave de

Ponton d’Amécourt in 1861. It is linked to the Greek words

helix/helikos (“spiral” or “turning”) and pteron (“wing”).

1-2

Figure 1-1. Search and rescue helicopter conducting a pinnacle

approach.

Figure 1-2. Search and rescue helicopter landing in a confined area.

As an aircraft, the primary advantages of the helicopter are

due to the rotor blades that revolve through the air, providing

lift without requiring the aircraft to move forward. This lift

allows the helicopter to hover in one area and to take off

and land vertically without the need for runways. For this

reason, helicopters are often used in congested or isolated

areas where fixed-wing aircraft are not able to take off or

land. [Figures 1-1 and 1-2]

Piloting a helicopter requires adequate, focused and safety-

orientated training. It also requires continuous attention

to the machine and the operating environment. The pilot

must work in three dimensions and use both arms and

both legs constantly to keep the helicopter in a desired

state. Coordination, timing and control touch are all used

simultaneously when flying a helicopter.

Although helicopters were developed and built during the

first half-century of flight, some even reaching limited

production; it was not until 1942 that a helicopter designed by

Igor Sikorsky reached full-scale production, with 131 aircraft

built. Even though most previous designs used more than one

main rotor, it was the single main rotor with an antitorque

tail rotor configuration that would come to be recognized

worldwide as the helicopter.

Turbine Age

In 1951, at the urging of his contacts at the Department of

the Navy, Charles H. Kaman modified his K-225 helicopter

with a new kind of engine, the turbo-shaft engine. This

adaptation of the turbine engine provided a large amount of

horsepower to the helicopter with a lower weight penalty

than piston engines, heavy engine blocks, and auxiliary

components. On December 11, 1951, the K-225 became

the first turbine-powered helicopter in the world. Two years

later, on March 26, 1954, a modified Navy HTK-1, another

Kaman helicopter, became the first twin-turbine helicopter

to fly. However, it was the Sud Aviation Alouette II that

would become the first helicopter to be produced with a

turbine engine.

Reliable helicopters capable of stable hover flight were

developed decades after fixed-wing aircraft. This is largely

due to higher engine power density requirements than

fixed-wing aircraft. Improvements in fuels and engines

during the first half of the 20th century were critical factors

in helicopter development. The availability of lightweight

turbo-shaft engines in the second half of the 20th century led

to the development of larger, faster, and higher-performance

helicopters. While smaller and less expensive helicopters

still use piston engines, turboshaft engines are the preferred

powerplant for helicopters today.

The turbine engine has the following advantages over a

reciprocating engine:

• Less vibration

• Increased aircraft performance

• Reliability

• Ease of operation

1-3

Figure 1-3. The many uses for a helicopter include search and rescue

(top), firefighting (middle), and construction (bottom).

Hub

Mast Rotor blades

Figure 1-4. Basic components of the rotor system.

Uses

Due to the unique operating characteristics of the helicopter—

its ability to take off and land vertically, to hover for extended

periods of time, and the aircraft’s handling properties under

low airspeed conditions—it has been chosen to conduct tasks

that were previously not possible with other aircraft or were

too time- or work-intensive to accomplish on the ground.

Today, helicopters are used for transportation, construction,

firefighting, search and rescue, and a variety of other jobs

that require its special capabilities. [Figure 1-3]

Rotor System

The helicopter rotor system is the rotating part of a

helicopter that generates lift. A rotor system may be mounted

horizontally, as main rotors are, providing lift vertically; and

it may be mounted vertically, such as a tail rotor, to provide

lift horizontally as thrust to counteract torque effect. In the

case of tilt rotors, the rotor is mounted on a nacelle that

rotates at the edge of the wing to transition the rotor from a

horizontal mounted position, providing lift horizontally as

thrust, to a vertical mounted position providing lift exactly

as a helicopter.

The rotor consists of a mast, hub, and rotor blades. [Figure 1-4]

The mast is a hollow cylindrical metal shaft which extends

upwards from and is driven by the transmission. At the top

of the mast is the attachment point for the rotor blades called

the hub. The rotor blades are then attached to the hub by

several different methods. Main rotor systems are classified

according to how the main rotor blades are attached and

move relative to the main rotor hub. There are three basic

classifications: semirigid, rigid, or fully articulated, although

some modern rotor systems use an engineered combination

of these types. All three rotor systems are discussed with

greater detail in Chapter 4, Helicopter Components, Sections,

and Systems.

With a single main rotor helicopter, a torque effect is created

as the engine turns the rotor. This torque causes the body of

the helicopter to turn in the opposite direction of the rotor

(Newton’s Third Law: Every action has an equal and opposite

reaction, as explained in Chapter 2, Aerodynamics of Flight).

To eliminate this effect, some sort of antitorque control must

be used with a sufficient margin of power available to allow

the helicopter to maintain its heading and prevent the aircraft

from moving unsteadily. The three most common controls

used today are the traditional tail rotor, Fenestron (also called

a fantail), and the NOTAR®. All three antitorque designs will

be discussed in Chapter 4, Helicopter Components, Sections,

and Systems.

1-4

Figure 1-7. Coaxial rotors.

Figure 1-5. Igor Sikorsky designed the VS-300 helicopter

incorporating the tail rotor into the design.

Figure 1-6. Tandem rotor helicopters.

Rotor Configurations

Most helicopters have a single, main rotor but require a

separate rotor to overcome torque which is a turning or

twisting force. This is accomplished through a variable

pitch, antitorque rotor or tail rotor. This is the design that

Igor Sikorsky settled on for his VS-300 helicopter shown

in Figure 1-5. It has become the recognized convention for

helicopter design, although designs do vary. Helicopter main

rotor designs from different manufacturers rotate in one of

two different directions (clockwise or counter-clockwise

when viewed from above). This can make it confusing when

discussing aerodynamic effects on the main rotor between

different designs, since the effects may manifest on opposite

sides of each aircraft. For clarity, throughout this handbook,

all examples use a counter-clockwise rotating main rotor

system when viewed from above.

For clarity, throughout this handbook, all examples use a

counter-clockwise rotating main rotor system when viewed

from above.

Tandem Rotor

Tandem rotor (sometimes referred to as dual rotor) helicopters

have two large horizontal rotor assemblies, instead of one

main assembly and a smaller tail rotor. [Figure 1-6] Single

rotor helicopters need a tail rotor to neutralize the twisting

momentum produced by the single large rotor. Tandem

rotor helicopters, however, use counter-rotating rotors, each

canceling out the other’s torque. Counter-rotating rotor

blades will not collide with and destroy each other if they

flex into the other rotor’s pathway. This configuration has

the advantage of being able to hold more weight with shorter

blades, since there are two blade sets. Also, all the power

from the engines can be used for lift, whereas a single rotor

helicopter must use some power to counter main rotor torque.

Because of this, tandem helicopters make up some of the

most powerful and fastest rotor system aircraft.

Coaxial Rotors

Coaxial rotors are a pair of rotors turning in opposite

directions, but mounted on a mast, with the same axis of

rotation, one above the other. This configuration is a noted

feature of helicopters produced by the Russian Kamov

helicopter design bureau. [Figure 1-7]

Intermeshing Rotors

Intermeshing rotors on a helicopter are a set of two rotors

turning in opposite directions, with each rotor mast mounted

on the helicopter with a slight angle to the other so that

the blades intermesh without colliding. [Figure 1-8] This

arrangement allows the helicopter to function without the

need for a tail rotor. It has high stability and powerful lifting

capability. This configuration is sometimes referred to as a

synchropter. The arrangement was developed in Germany

1-5

Tail rotor driveshaft

located inside

of tail body

Tail rotor shaft

Tail rotor

Pitch change links

Cross Head

Figure 1-8. HH-43 Huskie with intermeshing rotors.

Figure 1-9. Basic tail rotor components.

for a small anti-submarine warfare helicopter, the Flettner

Fl 282 Kolibri. During the Cold War the American Kaman

Aircraft company produced the HH-43 Huskie, for USAF

firefighting purposes. The latest Kaman K-MAX model is

a dedicated sky crane design used for construction work.

Tail Rotor

The tail rotor is a smaller rotor mounted vertically or near-

vertically on the tail of a traditional single-rotor helicopter.

The tail rotor either pushes or pulls against the tail to counter

the torque. The tail rotor drive system consists of a drive shaft

powered from the main transmission and a gearbox mounted

at the end of the tail boom. [Figure 1-9] The drive shaft may

consist of one long shaft or a series of shorter shafts connected

at both ends with flexible couplings. The flexible couplings

allow the drive shaft to flex with the tail boom.

The gearbox at the end of the tail boom provides an angled

drive for the tail rotor and may also include gearing to adjust

the output to the optimum rotational speed typically measured

in revolutions per minute (rpm) for the tail rotor. On some

larger helicopters, intermediate gearboxes are used to angle

the tail rotor drive shaft from along the tail boom or tailcone

to the top of the tail rotor pylon, which also serves as a vertical

stabilizing airfoil to alleviate the power requirement for the

tail rotor in forward flight. The pylon (or vertical fin) may

also provide limited antitorque within certain airspeed ranges

if the tail rotor or the tail rotor flight controls fail.

Controlling Flight

A helicopter has four primary flight controls:

• Cyclic

• Collective

• Antitorque pedals

• Throttle

Cyclic

The cyclic control is usually located between the pilot’s legs

and is commonly called the “cyclic stick” or simply “cyclic.”

On most helicopters, the cyclic is similar to a joystick;

however, Robinson helicopters have unique T-bar cyclic

control systems. A few helicopters have cyclic controls that

descend into the cockpit from overhead while others use side

cyclic controls.

The control is called the cyclic because it can vary the pitch

of the rotor blades throughout each revolution of the main

rotor system (i.e., through each cycle of rotation) to develop

unequal lift (thrust). The result is to tilt the rotor disk in a

particular direction, resulting in the helicopter moving in that

direction. If the pilot pushes the cyclic forward, the rotor disk

tilts forward, and the rotor produces a thrust in the forward

direction. If the pilot pushes the cyclic to the side, the rotor

disk tilts to that side and produces thrust in that direction,

causing the helicopter to hover sideways. [Figure 1-10]

Collective

The collective pitch control, or collective, is located on the

left side of the pilot’s seat with a pilot-selected variable

friction control to prevent inadvertent movement. The

collective changes the pitch angle of all the main rotor blades

1-6

Horizontal stabilizer

70

5

30

85

50

15

100

70

5

30

85

50

15

100

Twist grip throttle

Collective control

Throttle cable

Throttle linkage

Fuel control or carburetor

Figure 1-11. The throttle control mounted at the end of the collective

control.

Figure 1-12. The horizontal stabilizer helps level the helicopter to

minimize drag during flight.

Swash plate

Figure 1-10. Cyclic controls changing the pitch of the rotor blades.

collectively (i.e., all at the same time) and independently of

their positions. Therefore, if a collective input is made, all

the blades change equally, increasing or decreasing total

lift or thrust, with the result of the helicopter increasing or

decreasing in altitude or airspeed.

Antitorque Pedals

The antitorque pedals are located in the same position as the

rudder pedals in a fixed-wing aircraft and serve a similar

purpose, namely to control the direction in which the nose

of the aircraft is pointed. Application of the pedal in a given

direction changes the pitch of the tail rotor blades, increasing

or reducing the thrust produced by the tail rotor, causing the

nose to yaw in the direction of the applied pedal. The pedals

mechanically change the pitch of the tail rotor, altering the

amount of thrust produced.

Throttle

Helicopter rotors are designed to operate at a specific rpm.

The throttle controls the power produced by the engine, which

is connected to the rotor by a transmission. The purpose of

the throttle is to maintain enough engine power to keep the

rotor rpm within allowable limits to produce enough lift for

flight. In single-engine helicopters, if so equipped, the throttle

control is typically a twist grip mounted on the collective

control, but it can also be a lever mechanism in fully

governed systems. Multi-engine helicopters generally have

a power lever or mode switch for each engine. [Figure 1-11]

Helicopter flight controls are discussed in greater detail

throughout Chapter 4, Helicopter Components, Sections

and Systems.

Flight Conditions

There are two basic flight conditions for a helicopter: hover

and forward flight. Hovering is the most challenging part of

flying a helicopter. This is because a helicopter generates

its own gusty air while in a hover, which acts against the

fuselage and flight control surfaces. The end result is the

need for constant control inputs and corrections by the pilot

to keep the helicopter where it is required to be. Despite

the complexity of the task, the control inputs in a hover are

simple. The cyclic is used to eliminate drift in the horizontal

direction that is to control forward and back, right and left.

The collective is used to maintain altitude. The pedals are

used to control nose direction or heading. It is the interaction

of these controls that makes hovering so difficult, since an

adjustment in any one control requires an adjustment of the

other two, creating a cycle of constant correction.

Displacing the cyclic forward initially causes the nose to

pitch down, with a resultant increase in airspeed and loss

of altitude. Aft cyclic initially causes the nose to pitch up,

slowing the helicopter and causing it to climb; however, as

the helicopter reaches a state of equilibrium, the horizontal

stabilizer helps level the helicopter to minimize drag, unlike

1-7

an airplane. [Figure 1-12] Therefore, the helicopter has

very little pitch deflection up or down when the helicopter

is stable in a flight mode. The variation from absolutely

level depends on the particular helicopter and the horizontal

stabilizer function.

Increasing collective (power) while maintaining a constant

airspeed induces a climb while decreasing collective causes

a descent. Coordinating these two inputs, down collective

plus aft cyclic or up collective plus forward cyclic, results

in airspeed changes while maintaining a constant altitude.

The pedals serve the same function in both a helicopter

and a fixed-wing aircraft, to maintain balanced flight. This

is done by applying pedal input in whichever direction is

necessary to center the ball in the turn and bank indicator.

Flight maneuvers are discussed in greater detail throughout

Chapter 9, Basic Flight Maneuvers.

Chapter Summary

This chapter gives the reader an overview of the history

of the helicopter, its many uses, and how it has developed

throughout the years. The chapter also introduces basic terms

and explanations of the helicopter components, sections, and

the theory behind how the helicopter flies.

1-8

2-1

Introduction

This chapter presents aerodynamic fundamentals and

principles as they apply to helicopters. The content relates

to flight operations and performance of normal flight tasks.

It covers theory and application of aerodynamics for the

pilot, whether in flight training or general flight operations.

Aerodynamics of Flight

Chapter 2

2-2

Rotor thrustLift component of rotor thrust

Propulsive force

component of

rotor thrust

Drag

WeightResultant of drag and weight

Figure 2-3. Four forces acting on a helicopter in forward flight.

Figure 2-2. Profile of an airfoil.

20´

5´

Figure 2-1. Area of a blade.

Gravity acting on the mass (the amount of matter) of an object

creates a force called weight. The rotor blade below weighs

100 lbs. It is 20 feet long (span) and is 1 foot wide (chord).

Accordingly, its surface area is 20 square feet. [Figure 2-1]

The blade is perfectly balanced on a pinpoint stand, as you

can see in Figure 2-2 from looking at it from the end (the

airfoil view). The goal is for the blade to defy gravity and

stay exactly where it is when we remove the stand. If we do

nothing before removing the stand, the blade will simply fall

to the ground. Can we exert a force (a push or pull) opposite

gravity that equals the 100 lb. weight of the blade? Yes, for

example, electromagnetic force could be used. In helicopters,

however, we use aerodynamic force to oppose weight and

to maneuver.

Every object in the atmosphere is surrounded by a gas that

exerts a static force of 2,116 lb per square foot (a force

times a unit area, called pressure) at sea level. However, that

pressure is exerted equally all over the blade (top and bottom)

and therefore does not create any useful force on the blade.

We need only create a difference of a single pound of static

pressure differential per square foot of blade surface to have a

force equal to the blade’s weight (100 lb of upward pressure

opposite 100 lb downward weight).

Total pressure consists of static pressure and, if the air is

moving, dynamic pressure (a pressure in the direction of the

air movement). As shown in Figure 2-3, if dynamic pressure

is increased the static pressure will decrease. Due to the

design of the airfoil, the velocity of the air passing over the

upper surface will be greater than that of the lower surface,

leading to higher dynamic pressure on the upper surface than

on the lower surface. The higher dynamic pressure on the

upper surface lowers the static pressure on the upper surface.

The static pressure on the bottom will now be greater than

the static pressure on the top. The blade will experience an

upward force. With just the right amount of air passing over

the blade the upward force will equal one pound per square

foot. This upward force is equal to, and acts opposite the

blade’s weight of 100 lb. So, if we now remove the stand, the

blade will defy gravity and remain in its position (ignoring

rearward drag for the moment).

The force created by air moving over an object (or moving

an object through the air) is called aerodynamic force. Aero

means air. Dynamic means moving or motion. Accordingly,

by moving the air over an airfoil we can change the static

pressures on the top and bottom thereby generating a useful

force (an aerodynamic force). The portion of the aerodynamic

force that is usually measured perpendicular to the air flowing

around the airfoil is called lift and is used to oppose weight.

Drag is the portion of aerodynamic force that is measured

as the resistance created by an object passing through the air

(or having the air passed over it). Drag acts in a streamwise

direction with the wind passing over the airfoil and retards

forward movement.

Forces Acting on the Aircraft

Once a helicopter leaves the ground, it is acted upon by

four aerodynamic forces; thrust, drag, lift, and weight.

Understanding how these forces work and knowing how to

control them with the use of power and flight controls are

essential to flight. [Figure 2-3] They are defined as follows:

2-3

Increased air

pressure underneath

Reduced air pressure Upper camber helps

to deflect air down

Mass of air deflected down

Figure 2-4. Production of lift.

• Lift—opposes the downward force of weight, is

produced by the dynamic effect of the air acting on the

airfoil and acts perpendicular to the flightpath through

the center of lift.

• Weight—the combined load of the aircraft itself, the

crew, the fuel, and the cargo or baggage. Weight pulls

the aircraft downward because of the force of gravity.

It opposes lift and acts vertically downward through

the aircraft’s center of gravity (CG).

• Thrust—the force produced by the power plant/

propeller or rotor. It opposes or overcomes the force

of drag. As a general rule, it acts parallel to the

longitudinal axis. However, this is not always the case,

as explained later.

• Drag—a rearward, retarding force caused by

disruption of airflow by the wing, rotor, fuselage, and

other protruding objects. Drag opposes thrust and acts

rearward parallel to the relative wind.

For a more in-depth explanation of general aerodynamics,

refer to the Pilot’s Handbook of Aeronautical Knowledge.

Lift

Lift is generated when an object changes the direction of

flow of a fluid or when the fluid is forced to move by the

object passing through it. When the object and fluid move

relative to each other and the object turns the fluid flow in

a direction perpendicular to that flow, the force required to

do this work creates an equal and opposite force that is lift.

The object may be moving through a stationary fluid, or the

fluid may be flowing past a stationary object—these two are

effectively identical as, in principle, it is only the frame of

reference of the viewer which differs. The lift generated by

an airfoil depends on such factors as:

• Speed of the airflow

• Density of the air

• Total area of the segment or airfoil

• Angle of attack (AOA) between the air and the airfoil

The AOA is the angle at which the airfoil meets the oncoming

airflow (or vice versa). In the case of a helicopter, the object

is the rotor blade (airfoil) and the fluid is the air. Lift is

produced when a mass of air is deflected, and it always acts

perpendicular to the resultant relative wind. A symmetric

airfoil must have a positive AOA to generate positive lift. At

a zero AOA, no lift is generated. At a negative AOA, negative

lift is generated. A cambered or nonsymmetrical airfoil may

produce positive lift at zero, or even small negative AOA.

The basic concept of lift is simple. However, the details of how

the relative movement of air and airfoil interact to produce

the turning action that generates lift are complex. In any case

causing lift, an angled flat plate, revolving cylinder, airfoil,

etc., the flow meeting the leading edge of the object is forced to

split over and under the object. The sudden change in direction

over the object causes an area of low pressure to form behind

the leading edge on the upper surface of the object. In turn,

due to this pressure gradient and the viscosity of the fluid,

the flow over the object is accelerated down along the upper

surface of the object. At the same time, the flow forced under

the object is rapidly slowed or stagnated causing an area of

high pressure. This also causes the flow to accelerate along

the upper surface of the object. The two sections of the fluid

each leave the trailing edge of the object with a downward

component of momentum, producing lift. [Figure 2-4]

Bernoulli’s Principle

Bernoulli’s principle describes the relationship between

internal fluid pressure and fluid velocity. It is a statement

of the law of conservation of energy and helps explain why

an airfoil develops an aerodynamic force. The concept of

conservation of energy states energy cannot be created or

destroyed and the amount of energy entering a system must

also exit. Specifically, in this case the “energy” referred

to is the dynamic pressure (the kinetic energy of the air—

more velocity, more kinetic energy) and static air pressure

(potential energy). These will change among themselves, but

the total pressure energy remains constant inside the tube.

A simple tube with a constricted portion near the center of its

length illustrates this principle. An example is running water

through a garden hose. The mass of flow per unit area (cross-

sectional area of tube) is the mass flow rate. In Figure 2-5,

the flow into the tube is constant, neither accelerating nor

decelerating; thus, the mass flow rate through the tube must

be the same at stations 1, 2, and 3. If the cross-sectional area

at any one of these stations—or any given point—in the

tube is reduced, the fluid velocity must increase to maintain

a constant mass flow rate to move the same amount of fluid

through a smaller area. The continuity of mass flow causes

the air to move faster through the venturi. In other words,

fluid speeds up in direct proportion to the reduction in area.

2-4

WATER INPUT WATER OUTPUT

Station 1

Station 2

Station 3

Velocity increased

Static pressure decreased

(compared to original)

Same mass of air

Mass of air Cross-section of cylinder

PTotal = PDynamic + PStatic

34 PSF PD 41 PSF PD

2116 PSF PS

2109 PSF PS

Point 1 Point 2

PT = 2150 PSF

PD = 34 PSF

PS = 2116 PSF

V = 100 KTS

Point 1

PT = 2150 PSF

PD = 41 PSF

PS = 2109 PSF

V = 120 KTS

Point 2

Figure 2-5. Water flow through a tube.

Figure 2-6. Venturi effect.

Bernoulli (Ptotal = Pdynamic + Pstatic) states that the increase

in velocity will increase the streamwise dynamic pressure.

Since the total pressure in the tube must remain constant,

the static pressure on the sides of the venturi will decrease.

Venturi effect is the term used to describe this phenomenon.

Figure 2-6 illustrates plates of one square foot in the dynamic

flow and on the sides of the tube indicating static pressure,

with corresponding pressure. At point 2, it is easier to

visualize the static pressure reduction on the top of the airfoil

as compared to the bottom of the airfoil, which is depicted as

outside of the tube and therefore at ambient static pressure.

Keep in mind with actual blades it is not a simple as this

example because the bottom static pressure is influenced by

blade design and blade angle, among other things. However,

the basic idea is that it is the static pressure differential

between the top and bottom multiplied by the surface area

of the blade that generates the aerodynamic force.

Venturi Flow

While the amount of total energy within a closed system (the

tube) does not change, the form of the energy may be altered.

Pressure of flowing air may be compared to energy in that the

total pressure of flowing air always remains constant unless

energy is added or removed. Fluid flow pressure has two

components—static and dynamic pressure. Static pressure

is the pressure component measured in the flow but not

moving with the flow as pressure is measured. Static pressure

is also known as the force per unit area acting on a surface.

Dynamic pressure of flow is that component existing as a

result of movement of the air. The sum of these two pressures

is total pressure. As air flows through the constriction, static

pressure decreases as velocity increases. This increases

dynamic pressure. Figure 2-7 depicts the bottom half of the

constricted area of the tube, which resembles the top half of

an airfoil. Even with the top half of the tube removed, the air

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