Analysis and Selection of Deployment Methods for a Wave Glider System
Abstract
:1. Introduction
2. Multibody Dynamic Models of Wave Gliders
- Heave and sway motion are only considered for the float and glider, and the model is established in a vertical plane.
- The mass center of the float and glider is located on the hinged joint. The cable has no effects on the wave glider system when it is slack.
- The hydrodynamics parameters are calculated based on potential theory, thus, this model is not adapted to extreme sea states.
- Concentrated forces are calculated to act on the wave glider system directly and the relative motion between seawater and the wave glider is neglected.
- The vortexes and wakes caused by the hydrofoil’s rotation are neglected.
3. Simulation Analysis
3.1. Displacement Analysis of the Wave Glider
3.2. Velocity Analysis of the Wave Glider
3.3. Force Analysis of the Wave Glider during Process of Deployment
4. Conclusions
- The displacement performance of two different methods was discussed. By analyzing deployment displacement curves, it can be seen that the wave glider system behaves unstably at the beginning of deployment, and then it tends to be stable after 5 s. Method 1 has a larger displacement than Method 2.
- The velocity characteristics were obtained. Although the average velocity is not very different for each method, a sudden change of velocity will occur at 1.2 s when Method 2 is selected.
- Deployment methods have quite an effect on tension force of the hinged joint between the cable and float. Method 2 suffers more serious tension than Method 1, which will lead to serious extra load on the structure of the wave glider. However, Method 1 performs more stably under the same conditions. Overall, Method 1 has smaller sudden impacts of the tension force and the best performance.
Author Contributions
Funding
Conflicts of Interest
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Parameters | Values |
---|---|
Mass of the float | 41 kg |
Mass of the glider | 50 kg |
Float dimension | |
Underwater gravity of the glider | 380 N |
Area of hydrofoil | 600 cm2 |
Length of the cable | 2 m |
Drag coefficients | 1.5 |
Spring stiffness | 106 N/m |
Limit angle | 25° |
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Wang, X.; Chang, Z.; Zheng, Z.; Zhang, J.; Feng, Z.; Lu, G. Analysis and Selection of Deployment Methods for a Wave Glider System. J. Mar. Sci. Eng. 2020, 8, 529. https://doi.org/10.3390/jmse8070529
Wang X, Chang Z, Zheng Z, Zhang J, Feng Z, Lu G. Analysis and Selection of Deployment Methods for a Wave Glider System. Journal of Marine Science and Engineering. 2020; 8(7):529. https://doi.org/10.3390/jmse8070529
Chicago/Turabian StyleWang, Xiuyuan, Zongyu Chang, Zhongqiang Zheng, Jiakun Zhang, Zhanxia Feng, and Guiqiao Lu. 2020. "Analysis and Selection of Deployment Methods for a Wave Glider System" Journal of Marine Science and Engineering 8, no. 7: 529. https://doi.org/10.3390/jmse8070529
APA StyleWang, X., Chang, Z., Zheng, Z., Zhang, J., Feng, Z., & Lu, G. (2020). Analysis and Selection of Deployment Methods for a Wave Glider System. Journal of Marine Science and Engineering, 8(7), 529. https://doi.org/10.3390/jmse8070529