1 Wings in Ground Effect |
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Marine Transport and WIG Development |
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Ground Effect for Higher Service Speed |
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Basic Principles of Ground Effect |
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Dynamic Air Cushion Craft (DACC) |
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Dynamic Air Cushion Wing-in-Ground Effect Craft (DACWIG) |
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2 WIG Craft Development |
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Russian Ekranoplan Development |
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KM or "Caspian Sea Monster" |
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Design Studies for Large Commercial Ekranoplan in Russia |
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Recent Small Craft Designs |
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Technical Data Summary for Russian WIG Craft |
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DACWIG Craft Developed by MARIC |
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WIG Developments in Germany |
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Tandem Airfoil Flairboats (TAF) |
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3 Longitudinal Force Balance and Trim |
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Centres of Effort and Their Estimation |
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Longitudinal Centres of Forces Acting on WIG Craft |
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Centre of Hydrodynamic Force Acting on Hull and Side Buoys |
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Centre of Static Air Cushion Pressure (CP) |
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Centre of Aerodynamic Lift of a Single Wing Beyond the GEZ |
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Centre of Lift of WIG Main Wing with Bow Thrusters in Ground Effect Zone |
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Centre of Lift of a Whole WIG Craft Operating in GEZ |
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Influence of Control Mechanisms on Craft Aerodynamic Centres |
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Longitudinal Force Balance |
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Condition for Normal Operation of a WIG in Various Operation Modes |
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Inherent Force-Balance Method |
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Controllable Equilibrium Method |
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Handling of WIG During Take-Off |
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4 Hovering and Slow-Speed Performance |
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Hovering Performance Requirements |
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Hump Speed Transit and Take-Off into GEZ |
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PARWIG Theory from the 1970's |
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Static Hovering Performance of DACWIG and DACC |
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Configuration of a DACC or DACWIG |
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Static Hovering Performance of DACC and DACWIG |
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Measures for Improving Slow-Speed Performance |
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Laminar Flow Coating on the Bottoms of Hull and Side Buoys |
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5 Aerodynamics in steady Flight |
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An Experimental Investigation of Airfoil Aerodynamics |
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WIG Aerodynamic Characteristics |
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Factors Influencing WIG Aerodynamic Characteristics |
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Bow Thruster with Guide Vanes or Jet Nozzle |
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Special Main-Wing Profile |
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6 Longitudinal and Transverse Stability |
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Pitch Stability Design Criteria |
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Height Stability Design Criteria |
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Main-Wing Airfoil and Geometry |
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Influence of Ground Effect on Equilibrium |
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Influence of Bow Thrusters with Jet Nozzle or Guide Vanes |
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Automatic Control Systems |
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Static Longitudinal Stability in and Beyond the GEZ |
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Static Longitudinal Stability of an Aircraft and a WIG Operating Beyond the GEZ |
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Flying Height Pitching Centre |
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Estimation of Balance Centres |
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Static Longitudinal Stability Criteria |
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Requirements for Positive Static Longitudinal Stability |
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Static Transverse Stability of DACWIG in Steady Flight |
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WIG Operating in Weak GEZ |
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Transverse Stability Criteria |
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Transverse Stability at Slow Speed |
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Transverse Stability During Turning |
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PARWIG Transverse Stability |
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Dynamic Longitudinal Stability over Calm Water |
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Transient Stability During Transition Phases |
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7 Calm Water Drag and Power |
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Hump Drag and Its Minimisation |
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Estimation of the Craft Drag Before Take-Off |
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Drag of WIG After Take-Off |
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Powering Estimation for WIG |
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Performance Based on Wind-Tunnel Test Results of Model with Bow Thrusters in Operation |
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Estimation of WIG Total Drag |
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Drag Prediction by Correlation with Hydrodynamic Model Tast Results |
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Influences on Drag and Powering Over Calm Water |
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Transit Through Main Hump Speed (Fn = 2-4) |
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During Take-Off (Fn = 4.0-8.0) |
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8 Seakeeping and Manoeuvrability |
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Differential Equation of WIG Motion in Waves |
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Basic Longitudinal Differential Equations of DACWIG Motion in Waves |
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Manoeuvrability and Controllability |
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The Influence of a Wind Gust on the Running Trim of WIG in Steady Flight |
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Nonlinear Analysis of WIG Motion |
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Special Cases of Craft Motion |
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Manoeuvring in Hull-Borne Mode |
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Take-Off Handling in Waves |
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Operation of WIG Craft in Higher GEZ |
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280 | |
9 Model Tests and Aero-hydrodynamic Simulation |
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283 | |
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283 | |
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Static Hovering Experiments on a Rigid Ground Plane |
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284 | |
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Model Tests in a Towing Tank |
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284 | |
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Model Experiments in a Wind Tunnel |
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285 | |
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Radio-controlled Model Tests on Open Water and Catapult Model Testing Over Ground |
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285 | |
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Scaling Parameters for WIG |
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Euler Number (Hq) and Relation to Cushion Pressure Ratio |
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Bow Thruster or Lift Fan Non-dimensional Characteristics of DACC and DACWIG |
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297 | |
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Other Scaling Terms for Towing Tank Test Models |
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10 Structural Design and Materials |
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307 | |
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Waterborne and Pre-take-off Loads |
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Take-Off and Landing Loads |
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Impact and Handling Loads |
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Fatigue, Damage Tolerance and Fail-Safe |
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WIG Structural Design Concepts and Considerations |
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Basic Design Considerations |
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324 | |
11 Power plant and Transmission |
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337 | |
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WIG Power Plant Type Selection |
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Internal Combustion Engines |
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339 | |
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Turbofan/Turboshaft/Turboprop Engines |
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WIG Application Special Requirements |
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345 | |
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Power Plant Installation Design |
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347 | |
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Pylon/Nacelle Installation |
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347 | |
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Engine and System Cooling |
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348 | |
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Internal Systems Installation |
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348 | |
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Engine and System Cooling |
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12 Lift and Propulsion Systems |
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Propeller and Ducted Fan Characteristics |
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Integrated Lift/Propulsion System |
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369 | |
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Propulsor Selection and Design |
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372 | |
13 Concept Design |
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373 | |
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General WIG Application Issues |
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376 | |
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379 | |
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WIG Subtypes and Their Application |
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381 | |
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384 | |
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Functional Specification for a WIG |
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385 | |
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388 | |
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Safety Codes for WIG Craft |
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393 | |
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Supplementary Safety Criteria for DACWIG |
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394 | |
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Setting Up a Preliminary Configuration |
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396 | |
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Procedure for Overall Preliminary Design |
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414 | |
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Determination of WIG Aerodynamic and Hydrodynamic Characteristics |
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414 | |
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Postscript |
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417 | |
Glossary |
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423 | |
References and Resources |
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433 | |
Subject Index |
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441 | |