| Series Preface |
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xv | |
| Preface to Third Edition |
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xvii | |
| Preface to Second Edition |
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xix | |
| Preface to First Edition |
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xxiii | |
| Acknowledgements |
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xxvii | |
| Notation |
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xxix | |
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xxxix | |
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2 | (1) |
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3 | (1) |
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4 | (1) |
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1.4 Simple Guide to the Book |
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5 | (3) |
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Chapter 2 Helicopter and Tilt rotor Flight Dynamics -- An Introductory Tour |
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8 | (1) |
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2.2 Four Reference Points |
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9 | (12) |
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2.2.1 The Mission and Piloting Tasks |
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9 | (3) |
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2.2.2 The Operational Environment |
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12 | (1) |
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2.2.3 The Vehicle Configuration, Dynamics, and Flight Envelope |
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13 | (1) |
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13 | (2) |
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Two Distinct Flight Regimes |
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15 | (1) |
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16 | (3) |
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2.2.4 The Pilot and Pilot-Vehicle Interface |
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19 | (1) |
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2.2.5 Resume of the Four Reference Points |
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20 | (1) |
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2.3 Modelling Helicopter/Tiltrotor Flight Dynamics |
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21 | (29) |
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21 | (1) |
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2.3.2 Multiple Interacting Subsystems |
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22 | (2) |
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2.3.3 Trim, Stability, and Response |
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24 | (1) |
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2.3.4 The Flapping Rotor in a Vacuum |
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25 | (3) |
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2.3.5 The Flapping Rotor in Air -- Aerodynamic Damping |
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28 | (3) |
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2.3.6 Flapping Derivatives |
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31 | (1) |
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2.3.7 The Fundamental 90° Phase Shift |
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31 | (1) |
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2.3.8 Hub Moments and Rotor/Fuselage Coupling |
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32 | (3) |
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2.3.9 Linearization in General |
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35 | (1) |
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2.3.10 Stability and Control Resume' |
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36 | (1) |
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2.3.11 The Static Stability Derivative Mw |
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37 | (2) |
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2.3.12 Rotor Thrust, Inflow, Zw, and Vertical Gust Response in Hover |
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39 | (2) |
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2.3.13 Gust Response in Forward Flight |
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41 | (1) |
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2.3.14 Vector-Differential Form of Equations of Motion |
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42 | (3) |
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45 | (3) |
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2.3.16 Inverse Simulation |
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48 | (1) |
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49 | (1) |
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50 | (16) |
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50 | (1) |
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2.4.2 Quantifying Quality Objectively |
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51 | (1) |
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2.4.3 Frequency and Amplitude -- Exposing the Natural Dimensions |
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52 | (1) |
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2.4.4 Stability -- Early Surprises Compared with Aeroplanes |
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53 | (3) |
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2.4.5 Pilot-in-the-Loop Control; Attacking a Manoeuvre |
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56 | (1) |
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2.4.6 Bandwidth -- A Parameter for All Seasons? |
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57 | (2) |
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2.4.7 Flying a Mission Task Element |
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59 | (1) |
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2.4.8 The Cliff Edge and Carefree Handling |
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60 | (1) |
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60 | (1) |
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61 | (2) |
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2.4.11 Inceptors and Displays |
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63 | (1) |
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2.4.12 Operational Benefits of Flying Qualities |
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63 | (2) |
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2.4.13 Flying Qualities Review |
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65 | (1) |
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2.5 Design for Flying Qualities; Stability and Control Augmentation |
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66 | (5) |
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2.5.1 Impurity of Primary Response |
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67 | (1) |
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2.5.2 Strong Cross-Couplings |
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67 | (1) |
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2.5.3 Response Degradation at Flight Envelope Limits |
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67 | (1) |
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68 | (1) |
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2.5.5 The Rotor as a Control Filter |
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68 | (1) |
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2.5.6 Artificial Stability |
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69 | (2) |
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2.6 Tiltrotor Flight Dynamics |
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71 | (1) |
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71 | (3) |
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Chapter 3 Modelling Helicopter Flight Dynamics: Building a Simulation Model |
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3.1 Introduction and Scope |
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74 | (4) |
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3.2 The Formulation of Helicopter Forces and Moments in Level 1 Modelling |
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78 | (56) |
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79 | (1) |
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Blade Flapping Dynamics -- Introduction |
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79 | (2) |
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The Centre-Spring Equivalent Rotor |
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81 | (5) |
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86 | (6) |
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92 | (5) |
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97 | (1) |
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98 | (1) |
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Momentum Theory for Axial Flight |
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98 | (3) |
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Momentum Theory in Forward Flight |
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101 | (5) |
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Local-Differential Momentum Theory and Dynamic Inflow |
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106 | (2) |
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Rotor Flapping-Further Considerations of the Centre-Spring Approximation |
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108 | (6) |
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Rotor in-Plane Motion: Lead-Lag |
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114 | (2) |
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116 | (1) |
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Ground Effect on Inflow and Induced Power |
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117 | (3) |
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120 | (2) |
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3.2.3 Fuselage and Empennage |
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122 | (1) |
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The Fuselage Aerodynamic Forces and Moments |
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122 | (3) |
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The Empennage Aerodynamic Forces and Moments |
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125 | (2) |
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3.2.4 Powerplant and Rotor Governor |
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127 | (2) |
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3.2.5 Flight Control System |
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129 | (2) |
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131 | (2) |
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133 | (1) |
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134 | (1) |
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3.3 Integrated Equations of Motion of the Helicopter |
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134 | (2) |
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3.4 Beyond Level 1 Modelling |
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136 | (11) |
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3.4.1 Rotor Aerodynamics and Dynamics |
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137 | (1) |
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137 | (1) |
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Modelling Section Lift, Drag, and Pitching Moment |
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138 | (2) |
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Modelling Local Incidence |
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140 | (1) |
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141 | (2) |
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3.4.2 Interactional Aerodynamics |
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143 | (4) |
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147 | (17) |
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Appendix 3 A Frames of Reference and Coordinate Transformations |
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153 | (1) |
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3A.1 The Inertial Motion of the Aircraft |
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153 | (3) |
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3A.2 The Orientation Problem -- Angular Coordinates of the Aircraft |
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156 | (2) |
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3A.3 Components of Gravitational Acceleration along the Aircraft Axes |
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158 | (1) |
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3A.4 The Rotor System -- Kinematics of a Blade Element |
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158 | (3) |
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3A.5 Rotor Reference Planes -- Hub, Tip Path, and No-Feathering |
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161 | (3) |
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Chapter 4 Modelling Helicopter Flight Dynamics: Trim and Stability Analysis |
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4.1 Introduction and Scope |
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164 | (4) |
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168 | (13) |
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4.2.1 The General Trim Problem |
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170 | (1) |
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4.2.2 Longitudinal Partial Trim |
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171 | (5) |
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4.2.3 Lateral/Directional Partial Trim |
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176 | (2) |
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4.2.4 Rotorspeed/Torque Partial Trim |
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178 | (1) |
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4.2.5 Balance of Forces and Moments |
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178 | (1) |
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4.2.6 Control Angles to Support the Forces and Moments |
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179 | (2) |
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181 | (81) |
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183 | (4) |
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187 | (1) |
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The Translational Velocity Derivatives |
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188 | (1) |
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The Derivatives Xu, Yv, Xv, and Yu (Mv and Lu) |
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188 | (1) |
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The Derivatives Mu and Mw |
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189 | (1) |
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The Derivatives Mw, MV, and Mv |
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190 | (1) |
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191 | (2) |
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193 | (1) |
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The Derivatives Nu, Nw, Lu, Lw |
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194 | (1) |
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The Angular Velocity Derivatives |
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195 | (1) |
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195 | (1) |
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The Derivatives Mq, Lp, Mp, Lq |
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196 | (3) |
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The Derivatives Nr, Lr, Np |
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199 | (1) |
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200 | (1) |
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The Derivatives Zt0, Zt1s |
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200 | (1) |
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201 | (1) |
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The Derivatives Mt1s, Mt1c, Lt1s, Lt1c |
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201 | (1) |
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The Derivatives YtOT, LtOT, NtOT |
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202 | (1) |
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The Effects of Nonuniform Rotor Inflow on Damping and Control Derivatives |
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203 | (1) |
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Some Reflections on Derivatives |
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204 | (1) |
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4.3.3 The Natural Modes of Motion |
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205 | (2) |
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207 | (7) |
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The Lateral/Directional Modes |
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214 | (4) |
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218 | (1) |
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Appendix 4A The Analysis of Linear Dynamic Systems (with Special Reference to 6-Dof Helicopter Flight) |
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218 | (9) |
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Appendix 4B The Three Case Helicopters: Lynx, Bo 105 and Puma |
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227 | (1) |
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4B.1 Aircraft Configuration Parameters |
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227 | (1) |
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The RAE (DRA) Research Lynx, ZD559 |
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227 | (2) |
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The DLR Research Bo 105, S123 |
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229 | (2) |
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The RAE (DRA) Research Puma, XW241 |
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231 | (2) |
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Fuselage Aerodynamic Characteristics |
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233 | (1) |
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233 | (1) |
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233 | (1) |
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233 | (1) |
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Empennage Aerodynamic Characteristics |
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234 | (1) |
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234 | (1) |
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234 | (1) |
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234 | (1) |
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4B.2 Stability and Control Derivatives |
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234 | (8) |
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4B.3 Tables of Stability and Control Derivatives and System Eigenvalues |
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242 | (16) |
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Appendix 4C The Trim Orientation Problem |
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258 | (4) |
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Chapter 5 Modelling Helicopter Flight Dynamics: Stability Under Constraint and Response Analysis |
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5.1 Introduction and Scope |
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262 | (1) |
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5.2 Stability Under Constraint |
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263 | (20) |
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5.2.1 Attitude Constraint |
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264 | (11) |
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5.2.2 Flight Path Constraint |
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275 | (1) |
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275 | (4) |
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279 | (4) |
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5.3 Analysis of Response to Controls |
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283 | (26) |
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283 | (1) |
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5.3.2 Heave Response to Collective Control Inputs |
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284 | (1) |
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Response to Collective in Hover |
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284 | (6) |
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Response to Collective in Forward Flight |
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290 | (1) |
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5.3.3 Pitch and Roll Response to Cyclic Pitch Control Inputs |
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291 | (1) |
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Response to Step Inputs in Hover -- General Features |
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292 | (1) |
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Effects of Rotor Dynamics |
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292 | (2) |
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Step Responses in Hover -- Effect of Key Rotor Parameters |
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294 | (2) |
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Response Variations with Forward Speed |
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296 | (1) |
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Stability Versus Agility -- Contribution of the Horizontal Tailplane |
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296 | (1) |
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297 | (4) |
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5.3.4 Yaw/Roll Response to Pedal Control Inputs |
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301 | (8) |
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5.4 Response to Atmospheric Disturbances |
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309 | (25) |
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Modelling Atmospheric Disturbances |
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310 | (1) |
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Modelling Helicopter Response |
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311 | (2) |
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313 | (2) |
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Appendix 5A Speed Stability Below Minimum Power; A Forgotten Problem? |
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315 | (19) |
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Chapter 6 Flying Qualities: Objective Assessment and Criteria Development |
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6.1 General Introduction to Flying Qualities |
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334 | (4) |
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6.2 Introduction and Scope: The Objective Measurement of Quality |
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338 | (3) |
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6.3 Roll Axis Response Criteria |
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341 | (33) |
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6.3.1 Task Margin and Manoeuvre Quickness |
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341 | (6) |
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6.3.2 Moderate to Large Amplitude/Low to Moderate Frequency: Quickness and Control Power |
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347 | (6) |
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6.3.3 Small Amplitude/Moderate to High Frequency: Bandwidth |
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353 | (1) |
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Early Efforts in the Time Domain |
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353 | (3) |
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356 | (3) |
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359 | (1) |
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Bandwidth/Phase Delay Boundaries |
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360 | (3) |
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363 | (1) |
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The Measurement of Bandwidth |
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363 | (5) |
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368 | (2) |
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370 | (1) |
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6.3.4 Small Amplitude/Low to Moderate Frequency: Dynamic Stability |
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371 | (1) |
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6.3.5 Trim and Quasi-Static Stability |
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372 | (2) |
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6.4 Pitch Axis Response Criteria |
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374 | (11) |
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6.4.1 Moderate to Large Amplitude/Low to Moderate Frequency: Quickness and Control Power |
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374 | (3) |
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6.4.2 Small Amplitude/Moderate to High Frequency: Bandwidth |
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377 | (1) |
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6.4.3 Small Amplitude/Low to Moderate Frequency: Dynamic Stability |
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378 | (3) |
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6.4.4 Trim and Quasi-Static Stability |
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381 | (4) |
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6.5 Heave Axis Response Criteria |
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385 | (10) |
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6.5.1 Criteria for Hover and Low-Speed Flight |
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388 | (3) |
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6.5.2 Criteria for Torque and Rotorspeed During Vertical Axis Manoeuvres |
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391 | (1) |
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6.5.3 Heave Response Criteria in Forward Flight |
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392 | (1) |
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6.5.4 Heave Response Characteristics in Steep Descent |
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393 | (2) |
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6.6 Yaw Axis Response Criteria |
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395 | (7) |
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6.6.1 Moderate to Large Amplitude/Low to Moderate Frequency: Quickness and Control Power |
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396 | (2) |
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6.6.2 Small Amplitude/Moderate to High Frequency: Bandwidth |
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398 | (1) |
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6.6.3 Small Amplitude/Low to Moderate Frequency: Dynamic Stability |
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398 | (3) |
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6.6.4 Trim and Quasi-Static Stability |
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401 | (1) |
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6.7 Cross-Coupling Criteria |
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402 | (4) |
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6.7.1 Pitch-to-Roll and Roll-to-Pitch Couplings |
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402 | (2) |
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6.7.2 Collective to Yaw Coupling |
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404 | (1) |
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6.7.3 Sideslip to Pitch and Roll Coupling |
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405 | (1) |
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6.8 Multi-Axis Response Criteria and Novel-Response Types |
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406 | (4) |
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6.8.1 Multi-Axis Response Criteria |
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406 | (1) |
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6.8.2 Novel Response Types |
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407 | (3) |
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6.9 Objective Criteria Revisited |
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410 | (8) |
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Chapter 7 Flying Qualities: Subjective Assessment and Other Topics |
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7.1 Introduction and Scope |
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418 | (1) |
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7.2 The Subjective Assessment of Flying Quality |
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419 | (19) |
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7.2.1 Pilot Handling Qualities Ratings -- HQRs |
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420 | (5) |
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7.2.2 Conducting a Handling Qualities Experiment |
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425 | (1) |
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Designing a Mission Task Element |
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425 | (2) |
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Evaluating Roll Axis Handling Characteristics |
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427 | (11) |
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7.3 Special Flying Qualities |
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438 | (24) |
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438 | (1) |
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Agility as a Military Attribute |
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438 | (1) |
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439 | (3) |
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Relating Agility to Handling Qualities Parameters |
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442 | (3) |
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7.3.2 The Integration of Controls and Displays for Flight in Degraded Visual Environments |
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445 | (1) |
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445 | (1) |
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445 | (1) |
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446 | (1) |
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The Usable Cue Environment |
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446 | (6) |
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UCE Augmentation with Overlaid Symbology |
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452 | (3) |
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7.3.3 Carefree Flying Qualities |
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455 | (7) |
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462 | (2) |
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7.5 The Contribution of Flying Qualities to Operational Effectiveness and the Safety of Flight |
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464 | (6) |
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Chapter 8 Flying Qualities: Forms of Degradation |
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8.1 Introduction and Scope |
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470 | (2) |
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8.2 Flight in Degraded Visual Environments |
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472 | (39) |
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8.2.1 Recapping the Usable Cue Environment |
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472 | (3) |
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8.2.2 Visual Perception in Flight Control -- Optical Flow and Motion Parallax |
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475 | (8) |
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8.2.3 Time to Contact; Optical Tau, τ |
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483 | (3) |
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8.2.4 τ Control in the Deceleration-to-Stop Manoeuvre |
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486 | (1) |
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8.2.5 Tau-Coupling -- A Paradigm for Safety in Action |
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487 | (7) |
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8.2.6 Terrain-Following Flight in Degraded Visibility |
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494 | (4) |
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498 | (9) |
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507 | (4) |
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8.3 Handling Qualities Degradation through Flight System Failures |
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511 | (13) |
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8.3.1 Methodology for Quantifying Flying Qualities Following Flight Function Failures |
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512 | (2) |
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8.3.2 Loss of Control Function |
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514 | (1) |
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514 | (3) |
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8.3.3 Malfunction of Control -- Hard-Over Failures |
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517 | (5) |
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8.3.4 Degradation of Control Function -- Actuator Rate Limiting |
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522 | (2) |
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8.4 Encounters with Atmospheric Disturbances |
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524 | (18) |
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8.4.1 Helicopter Response to Aircraft Vortex Wakes |
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525 | (1) |
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525 | (1) |
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526 | (7) |
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Analysis of Encounters -- Attitude Response |
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533 | (3) |
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Analysis of Encounters -- Vertical Response |
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536 | (2) |
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8.4.2 Severity of Transient Response |
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538 | (4) |
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542 | (12) |
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Appendix 8A HELIFLIGHT, HELIFLIGHT-R, and FLIGHTLAB at the University of Liverpool |
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545 | (1) |
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545 | (2) |
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8A.2 Immersive Cockpit Environment |
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547 | (4) |
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551 | (3) |
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Chapter 9 Flying Qualities: The Story of an Idea |
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9.1 Introduction and Scope |
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554 | (3) |
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9.2 Historical Context of Rotorcraft Flying Qualities |
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557 | (20) |
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9.2.1 The Early Years; Some Highlights from the 1940s--1950s |
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557 | (7) |
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9.2.2 The Middle Years -- Some Highlights from the 1960s--1970s |
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564 | (13) |
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9.3 Handling Qualities as a Performance Metric -- The Development of ADS--33 |
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577 | (2) |
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9.3.1 The Evolution of a Design Standard -- The Importance of Process |
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578 | (1) |
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9.3.2 Some Critical Innovations in ADS-33 |
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579 | (1) |
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579 | (1) |
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9.5 Roll Control; A Driver for Rotor Design |
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580 | (3) |
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583 | (10) |
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9.6.1 ADS-33 Tailoring and Applications |
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585 | (2) |
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9.6.2 Handling Qualities as a Safety Net; The Pilot as a System Component |
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587 | (6) |
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9.7 The Future Challenges for Rotorcraft Handling Qualities Engineering |
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593 | (5) |
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Chapter 10 Tiltrotor Aircraft: Modelling and Flying Qualities |
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10.1 Introduction and Scope |
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598 | (6) |
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10.2 Modelling and Simulation of Tiltrotor Aircraft Flight Dynamics |
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604 | (31) |
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10.2.1 Building a Simulation Model |
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605 | (2) |
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Multi-Body Dynamic Modelling |
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607 | (2) |
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609 | (1) |
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610 | (6) |
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FXV-15 Model Components and Data |
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616 | (1) |
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Gimballed Proprotor Family |
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616 | (2) |
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618 | (1) |
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618 | (1) |
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618 | (1) |
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Power Plant and Transmission Family |
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|
619 | (1) |
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Flight Control System Family |
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619 | (1) |
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10.2.2 Interactional Aerodynamics in Low-Speed Flight |
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620 | (1) |
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10.2.3 Vortex Ring State and the Consequences for Tiltrotor Aircraft |
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621 | (5) |
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10.2.4 Trim, Linearisation, and Stability |
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626 | (6) |
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632 | (3) |
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10.3 The Flying Qualities of Tiltrotor Aircraft |
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635 | (51) |
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635 | (3) |
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10.3.2 Developing Tiltrotor Mission Task Elements |
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638 | (6) |
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10.3.3 Flying Qualities of Tiltrotors; Clues from the Eigenvalues |
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644 | (8) |
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10.3.4 Agility and Closed-Loop Stability of Tiltrotors |
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652 | (1) |
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Lateral-Directional Agility and Closed-Loop Stability |
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652 | (5) |
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Longitudinal Pitch-Heave Agility and Closed-Loop Stability |
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657 | (13) |
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10.3.5 Flying Qualities during the Conversion |
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670 | (3) |
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10.3.6 Improving Tiltrotor Flying Qualities with Stability and Control Augmentation |
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673 | (1) |
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673 | (2) |
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V-22 Power Management and Control |
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675 | (4) |
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Unification of Flying Qualities |
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679 | (4) |
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Flying Qualities of Large Civil Tiltrotor Aircraft |
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683 | (3) |
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10.4 Load Alleviation versus Flying Qualities for Tiltrotor Aircraft |
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686 | (12) |
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10.4.1 Drawing on the V-22 Experience |
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686 | (1) |
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Transient Driveshaft and Rotor Mast Torque |
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686 | (1) |
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686 | (1) |
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Oscillatory Yoke In-plane/Chordwise Bending |
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687 | (1) |
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Nacelle Conversion Actuator Loads |
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688 | (1) |
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10.4.2 Load Alleviation for the European Civil Tiltrotor |
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|
688 | (1) |
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Modelling for SLA -- Oscillatory Yoke (Chordwise) Bending Moments |
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689 | (7) |
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696 | (2) |
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10.5 Chapter Epilogue; Tempus Fugit for Tiltrotors |
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|
698 | (55) |
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Appendix 10A Flightlab Axes Systems and Gimbal Flapping Dynamics |
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|
700 | (1) |
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10A.1 FLIGHTLAB Axes Systems |
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700 | (3) |
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10A.2 Gimbal Flapping Dynamics |
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703 | (2) |
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Appendix 10B The XV-15 Tiltrotor |
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|
705 | (1) |
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Aircraft Configuration Parameters |
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|
705 | (2) |
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|
707 | (1) |
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XV-15 Control Ranges and Gearings |
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|
707 | (3) |
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Appendix 10C The FXV-15 Stability and Control Derivatives |
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|
710 | (1) |
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|
710 | (15) |
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10C.2 FXV-15 Stability and Control Derivative and Eigenvalue Tables |
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|
725 | (1) |
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Helicopter Mode (Matrices Shown with and without (nointf) Aerodynamic Interactions) |
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|
725 | (8) |
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|
733 | (4) |
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|
737 | (5) |
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Appendix 10D Proprotor Gimbal Dynamics in Airplane Mode |
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|
742 | (4) |
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Appendix 10E Tiltrotor Directional Instability Through Constrained Roll Motion: An Elusive, Paradoxical Dynamic |
|
|
746 | (1) |
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10E.1 Background and the Effective Directional Stability |
|
|
746 | (1) |
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10E.2 Application to Tiltrotors |
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|
747 | (6) |
| References |
|
753 | (36) |
| Index |
|
789 | |