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E-grāmata: WIG Craft and Ekranoplan: Ground Effect Craft Technology

  • Formāts: PDF+DRM
  • Izdošanas datums: 03-Dec-2009
  • Izdevniecība: Springer-Verlag New York Inc.
  • Valoda: eng
  • ISBN-13: 9781441900425
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  • Formāts: PDF+DRM
  • Izdošanas datums: 03-Dec-2009
  • Izdevniecība: Springer-Verlag New York Inc.
  • Valoda: eng
  • ISBN-13: 9781441900425
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WIGs (Wing in Ground) are advanced hybrid air cushion crafts that offer a combination of speed, fuel efficiency, and ride smoothness. This book provides a comprehensive overview of the design, development and building of these vessels.



In the last half-century, high-speed water transportation has developed rapidly. Novel high-performance marine vehicles, such as the air cushion vehicle (ACV), surface effect ship (SES), high-speed monohull craft (MHC), catamaran (CAT), hydrofoil craft (HYC), wave-piercing craft (WPC) and small water area twin hull craft (SWATH) have all developed as concepts, achieving varying degrees of commercial and military success. Prototype ACV and SES have achieved speeds of 100 knots in at calm con- tions; however, the normal cruising speed for commercial operations has remained around 35–50 knots. This is partly due to increased drag in an average coastal s- way where such craft operate services and partly due to limitations of the propulsion systems for such craft. Water jets and water propellers face limitations due to c- itation at high speed, for example. SWATH are designed for reduced motions in a seaway, but the hull form is not a low drag form suitable for high-speed operation. So that seems to lead to a problem – maintain water contact and either water propulsion systems run out of power or craft motions and speed loss are a problem in higher seastates. The only way to higher speed would appear to be to disconnect completely from the water surface. You, the reader, might respond with a question about racing hydroplanes, which manage speeds of above 200 kph. Yes, true, but the power-to-weight ratio is extremely high on such racing machines and not economic if translated into a useful commercial vessel.
1 Wings in Ground Effect 1
Introduction
1
Marine Transport and WIG Development
2
Alternative Technologies
3
The Hydrofoil
4
The SES
4
The Hovercraft
5
Ground Effect for Higher Service Speed
6
Some WIG Technical Terms
7
Ground Effect
8
Dynamic Air Cushion
8
Static Air Cushion
9
Basic Principles of Ground Effect
9
Types of WIG
15
Classic WIG
16
PARWIG
17
PARWIG Attributes
22
PARWIG Limitations
22
Military Applications
23
Civil Applications
25
Dynamic Air Cushion Craft (DACC)
25
DACC Characteristics
27
DACC Applications
27
Dynamic Air Cushion Wing-in-Ground Effect Craft (DACWIG)
27
DACWIG Attributes
29
DACWIG Applications
32
2 WIG Craft Development 33
Introduction
33
Russian Ekranoplan Development
33
KM or "Caspian Sea Monster"
42
UT-1
45
Orlyonok and Lun
45
Orlyonok's Accident
47
The Development of Lun
51
Key to Fig. 2.20
54
Second-Generation WIG
54
Design Studies for Large Commercial Ekranoplan in Russia
57
Volga-2
59
Recent Small Craft Designs
60
Ivolga
60
Amphistar
63
Technical Data Summary for Russian WIG Craft
63
WIG Development in China
65
CSSRC PARWIG Craft
67
CASTD PARWIG
67
DACWIG Craft Developed by MARIC
70
The Conversion of "SWAN"
75
WIG Developments in Germany
77
Tandem Airfoil Flairboats (TAF)
77
Lippisch
78
Hoverwing
82
WIG in the United States
85
WIG in Australia
87
Sea Wing
87
Radacraft
89
Flightship
89
Concluding Observations
93
3 Longitudinal Force Balance and Trim 95
Introduction
95
Operational Modes
96
Running Trim
98
Centres of Effort and Their Estimation
102
Introduction
102
Longitudinal Centres of Forces Acting on WIG Craft
103
Centre of Buoyancy (CB)
103
Centre of Hydrodynamic Force Acting on Hull and Side Buoys
103
Centre of Static Air Cushion Pressure (CP)
104
Centre of Aerodynamic Lift of a Single Wing Beyond the GEZ
104
Centre of Lift of WIG Main Wing with Bow Thrusters in Ground Effect Zone
104
Centre of Lift of a Whole WIG Craft Operating in GEZ
106
Influence of Control Mechanisms on Craft Aerodynamic Centres
106
Longitudinal Force Balance
109
Condition for Normal Operation of a WIG in Various Operation Modes
109
Inherent Force-Balance Method
111
Controllable Equilibrium Method
112
Handling of WIG During Take-Off
114
4 Hovering and Slow-Speed Performance 117
Introduction
117
Hovering Performance Requirements
118
Manoeuvring and Landing
118
Low-Speed Operations
118
Hump Speed Transit and Take-Off into GEZ
119
Seakeeping
119
PARWIG Theory from the 1970's
120
Static Hovering Performance of DACWIG and DACC
125
Introduction
125
Configuration of a DACC or DACWIG
126
Static Hovering Performance of DACC and DACWIG
127
Measures for Improving Slow-Speed Performance
138
Inflatable Air Bag
141
Skirt
142
Laminar Flow Coating on the Bottoms of Hull and Side Buoys
142
Hard Landing Pads
144
5 Aerodynamics in steady Flight 147
Introduction
147
Airfoil Fundamentals
148
An Experimental Investigation of Airfoil Aerodynamics
153
Nomenclature
153
Basic Model
154
Model Tests
157
Discussion
175
Drag
177
Lift–Drag Ratio
177
Pitching Moment
178
Conclusion
178
WIG Aerodynamic Characteristics
179
Factors Influencing WIG Aerodynamic Characteristics
183
Bow Thruster with Guide Vanes or Jet Nozzle
183
Special Main-Wing Profile
184
Aspect Ratio
186
Other Measures
187
6 Longitudinal and Transverse Stability 189
Introduction
189
Forces and Moments
189
Pitching Centres
190
Pitch Stability Design Criteria
191
Height Stability Design Criteria
191
Main-Wing Airfoil and Geometry
192
Influence of Flaps
192
Tailplane and Elevators
193
Centre of Gravity
193
Influence of Ground Effect on Equilibrium
194
Influence of Bow Thrusters with Jet Nozzle or Guide Vanes
194
Automatic Control Systems
195
Stability Analysis
195
Static Longitudinal Stability in and Beyond the GEZ
197
Static Longitudinal Stability of an Aircraft and a WIG Operating Beyond the GEZ
198
Basic Stability Equation
199
Wing Pitching Centre
200
Pitching Pitching Centre
201
Flying Height Pitching Centre
203
Estimation of Balance Centres
204
Static Longitudinal Stability Criteria
206
Requirements for Positive Static Longitudinal Stability
207
Static Transverse Stability of DACWIG in Steady Flight
210
WIG Operating in Weak GEZ
213
Transverse Stability Criteria
215
Transverse Stability at Slow Speed
216
Transverse Stability During Turning
216
PARWIG Transverse Stability
217
Dynamic Longitudinal Stability over Calm Water
217
Basic Assumptions
218
Basic Motion Equations
218
Transient Stability During Transition Phases
222
7 Calm Water Drag and Power 225
Introduction
225
WIG Drag Components
230
WIG Drag Before Take-Off
231
Hump Drag and Its Minimisation
231
Estimation of the Craft Drag Before Take-Off
234
WIG Drag After Take-Off
239
Drag of WIG After Take-Off
239
Powering Estimation for WIG
243
Performance Based on Wind-Tunnel Test Results of Model with Bow Thrusters in Operation
244
Estimation of WIG Total Drag
245
Drag Prediction by Correlation with Hydrodynamic Model Tast Results
246
Influences on Drag and Powering Over Calm Water
249
Hull-Borne Mode
250
Transit Through Main Hump Speed (Fn = 2-4)
250
During Take-Off (Fn = 4.0-8.0)
250
Flying Mode
251
8 Seakeeping and Manoeuvrability 255
Introduction
255
Differential Equation of WIG Motion in Waves
256
Coordinate Systems
256
Basic Longitudinal Differential Equations of DACWIG Motion in Waves
256
Seakeeping Model Tests
259
Manoeuvrability and Controllability
267
WIG Control in Flight
268
The Influence of a Wind Gust on the Running Trim of WIG in Steady Flight
270
Nonlinear Analysis of WIG Motion
271
Special Cases of Craft Motion
273
Manoeuvring in Hull-Borne Mode
275
Take-Off Handling in Waves
275
Turning Performance
276
Operation of WIG Craft in Higher GEZ
280
9 Model Tests and Aero-hydrodynamic Simulation 283
Introduction
283
Experimental Methodology
284
Static Hovering Experiments on a Rigid Ground Plane
284
Model Tests in a Towing Tank
284
Model Experiments in a Wind Tunnel
285
Radio-controlled Model Tests on Open Water and Catapult Model Testing Over Ground
285
WIG Model Scaling Rules
286
Scaling Parameters for WIG
286
Reynold's Number
286
Euler Number (Hq) and Relation to Cushion Pressure Ratio
294
Wind-Tunnel Testing
294
Bow Thruster or Lift Fan Non-dimensional Characteristics of DACC and DACWIG
297
Froude Number, Fn
299
Weber Number, We
299
Other Scaling Terms for Towing Tank Test Models
300
Structural Simulation
301
Scaling Criteria
301
Model Test Procedures
302
10 Structural Design and Materials 307
Introduction
307
Design Loads
309
Waterborne and Pre-take-off Loads
310
Take-Off and Landing Loads
311
Ground-Manoeuvring Loads
312
Flight Loads
313
Impact and Handling Loads
314
Design Approach
315
Metallic Materials
316
Composite Materials
318
Sandwich Construction
320
Fatigue, Damage Tolerance and Fail-Safe
323
WIG Structural Design Concepts and Considerations
324
Basic Design Considerations
324
11 Power plant and Transmission 337
Introduction
337
WIG Power Plant Type Selection
338
Internal Combustion Engines
339
Turbofan/Turboshaft/Turboprop Engines
341
WIG Application Special Requirements
345
Marinisation
345
Altitude Operations
346
Power Plant Installation Design
347
Pylon/Nacelle Installation
347
Engine and System Cooling
348
Internal Systems Installation
348
Water Spray
349
Engine and System Cooling
349
Ice Protection
351
Transmission Systems
351
Drive Shall
351
Transmission
352
12 Lift and Propulsion Systems 355
Introduction
355
Power-Augmented Lift
356
Independent Lift Systems
359
Propulsion Systems
361
Propeller and Ducted Fan Characteristics
363
Turbofan System
367
Integrated Lift/Propulsion System
369
Propulsor Selection and Design
372
13 Concept Design 373
Introduction
373
General WIG Application Issues
376
Technical Factors
377
Operational Factors
379
WIG Subtypes and Their Application
381
WIG Preliminary Design
383
Design Sequence
384
Functional Specification for a WIG
385
Design Requirements
388
Safety Codes for WIG Craft
393
Basic Concepts
393
Supplementary Safety Criteria for DACWIG
394
Setting Up a Preliminary Configuration
396
Procedure for Overall Preliminary Design
414
Determination of WIG Aerodynamic and Hydrodynamic Characteristics
414
WIG Detailed Design
415
Postscript 417
Glossary 423
References and Resources 433
Subject Index 441