An Experimental Study on the Resistance of a High-Speed Air Cavity Craft
Abstract
:1. Introduction
2. Nomenclature
3. Test Content and Methodology
3.1. Hull Parameters
3.2. Test Setup and Model
3.3. Test Content
4. Results and Discussion
4.1. Text Results
4.2. Calculation Method
4.3. Effective Power
4.4. Heave and Pitch Angle during the Test
- When the longitudinal inclination is inadequate, the air does not exert a considerable lifting effect on the model. The high-speed air cavity craft does not attain the gliding state during operation and remains in the phase of ascending resistance peak, thus failing to achieve the optimal resistance reduction effect;
- Excessive longitudinal inclination leads to the lifting of the hull, gradual reduction of the wetted length, and a constant backward shift of the center of dynamic pressure at the bottom. Such an inclination results in poor stability of the ship at high speeds, and a significant change in sailing lift that causes higher splash and more severe waves within the amidships range of −0.4 to 0.05 m. This, in turn, leads to an increase in wave-making resistance and the growing contribution of splash resistance to the residual resistance, thus impairing the reduction of resistance.
4.5. Resistance Reduction Effect Analysis
5. Summary
- (1)
- In order to achieve a more effective reduction in resistance, the high-speed air cavity craft should select an appropriate initial stern inclination angle, and if feasible, the angle should vary with speed;
- (2)
- The influence of air pressure on model resistance is significant. As the air pressure increases, the resistance value gradually decreases until it reaches the optimal air pressure, after which the resistance remains relatively stable;
- (3)
- At the displacement state of a real ship of 125 t and a chamber pressure of 50 kPa, the resistance of the initial stern inclination of 2.5° is observed to be at its minimum near the design speed of Vs = 30 kn. Comparatively, the reduction effect is estimated to be 18.3% when compared to the state without air injection;
- (4)
- Before the formal test, a preliminary test was conducted to evaluate the test conditions, check the scientific feasibility of the experimental design, and accurately control the relevant variables, laying a foundation for the formal test. The pretest is crucial in preventing the inefficient use of manpower, materials, and financial resources resulting from poorly designed or blindly conducted tests. By reducing costs and saving time, the pretest plays a positive role in enhancing the efficiency and effectiveness of the overall testing process.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
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Symbol | Definition | Unit |
---|---|---|
AM | midship section area under the design waterline | m2 |
B | breadth | m |
CB | block coefficient | |
CM | midship section coefficient | |
LPP | length between perpendiculars | m |
LWL | waterline length | m |
S | wetted surface area | m2 |
T | draft | m |
TF | fore draft | m |
TA | aft draft | m |
∇ | molded volume | m3 |
ρ | water density | kg/m3 |
CFM | frictional resistance coefficient of ship model | |
CFS | frictional resistance coefficient of full-scale ship | |
CTM | total resistance coefficient of ship model | |
CTS | total resistance coefficient of a real ship | |
CR | residual resistance coefficient | |
Fr | Froude number | |
PE | effective power | kW |
RT | total resistance of ship | |
RM | total resistance of ship model | N |
Re | Reynolds number | |
RS | total resistance of full-scale ship | N |
LM | length of model | m |
LS | length of ship | m |
VM | velocity of model | m2/s |
VS | velocity of ship | kn |
CF | frictional resistance coefficient | |
ΔCF | roughness allowance coefficient | |
υ | kinematic viscosity coefficient of water | m2/s |
Symbol | Ship | Model | Unit |
---|---|---|---|
LWL | 25.0 | 2.5 | m |
LPP | 25.0 | 2.5 | m |
B | 5.8 | 0.58 | m |
TF | 1.25 | 0.125 | m |
TA | 2.38 | 0.238 | m |
T | 1.851 | 0.185 | m |
∇ | 125.0 | 0.125 | m3 |
AM | 7.17 | 0.0717 | m2 |
S | 181.0 | 1.810 | m2 |
CB | 0.465 | ||
CM | 0.668 | ||
LPP/B | 4.31 | ||
B/T | 3.20 |
Resistance (N) | ||||||
---|---|---|---|---|---|---|
VS (knots) | VM (m/s) | Fr | No Air 2.5° | 50 kPa 1.5° | 50 kPa 2.5° | 50 kPa 3.5° |
12 | 1.952 | 0.394 | 95.005 | 77.401 | 81.965 | 85.970 |
13 | 2.115 | 0.427 | 124.516 | 100.001 | 105.156 | 114.157 |
14 | 2.277 | 0.460 | 150.490 | 119.654 | 125.898 | 139.395 |
15 | 2.440 | 0.493 | 173.273 | 136.724 | 144.405 | 161.890 |
16 | 2.603 | 0.526 | 193.211 | 151.577 | 160.888 | 181.848 |
17 | 2.765 | 0.558 | 210.650 | 164.578 | 175.560 | 199.473 |
18 | 2.928 | 0.591 | 225.934 | 176.092 | 188.634 | 214.974 |
19 | 3.091 | 0.624 | 239.409 | 186.485 | 200.321 | 228.554 |
20 | 3.253 | 0.657 | 251.421 | 196.122 | 210.834 | 240.420 |
21 | 3.416 | 0.690 | 262.314 | 205.369 | 220.386 | 250.778 |
22 | 3.579 | 0.723 | 272.435 | 214.590 | 229.188 | 259.834 |
23 | 3.741 | 0.755 | 282.128 | 224.151 | 237.453 | 267.792 |
24 | 3.904 | 0.788 | 291.739 | 234.417 | 245.393 | 274.860 |
25 | 4.067 | 0.821 | 301.614 | 245.753 | 253.221 | 280.915 |
26 | 4.229 | 0.854 | 312.097 | 258.526 | 261.149 | 286.117 |
27 | 4.392 | 0.887 | 323.534 | 273.099 | 269.389 | 291.221 |
28 | 4.555 | 0.920 | 336.272 | 289.839 | 278.153 | 296.555 |
29 | 4.717 | 0.953 | 350.654 | 309.111 | 287.655 | 302.445 |
30 | 4.880 | 0.985 | 367.026 | 331.279 | 298.105 | 309.220 |
31 | 5.043 | 1.018 | 385.735 | 356.710 | 309.718 | 317.207 |
Speed | Stern Inclination Angle (°) | ||
---|---|---|---|
(kn) | 1.5 | 2.5 | 3.5 |
28 | 289.59 | 278.17 | 296.53 |
29 | 309.08 | 287.58 | 302.51 |
30 (design) | 331.32 | 298.11 | 309.27 |
31 | 356.73 | 309.76 | 317.19 |
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Song, L.; Yu, J.; Yu, Y.; Wang, Z.; Wu, S.; Gao, R. An Experimental Study on the Resistance of a High-Speed Air Cavity Craft. J. Mar. Sci. Eng. 2023, 11, 1256. https://doi.org/10.3390/jmse11071256
Song L, Yu J, Yu Y, Wang Z, Wu S, Gao R. An Experimental Study on the Resistance of a High-Speed Air Cavity Craft. Journal of Marine Science and Engineering. 2023; 11(7):1256. https://doi.org/10.3390/jmse11071256
Chicago/Turabian StyleSong, Lin, Jianxing Yu, Yang Yu, Zhaoyu Wang, Shibo Wu, and Ruilong Gao. 2023. "An Experimental Study on the Resistance of a High-Speed Air Cavity Craft" Journal of Marine Science and Engineering 11, no. 7: 1256. https://doi.org/10.3390/jmse11071256
APA StyleSong, L., Yu, J., Yu, Y., Wang, Z., Wu, S., & Gao, R. (2023). An Experimental Study on the Resistance of a High-Speed Air Cavity Craft. Journal of Marine Science and Engineering, 11(7), 1256. https://doi.org/10.3390/jmse11071256