Hydrodynamic Characteristics Study of Bionic Dolphin Tail Fin Based on Bidirectional Fluid-Structure Interaction Simulation.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2025-01-16 DOI:10.3390/biomimetics10010059
Ning Wang, Yu Zhang, Linghui Peng, Wenchuan Zhao
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Abstract

Using bidirectional fluid-structure interaction technology, the dorsal-ventral motion of the dolphin tail fin was simulated, and the feasibility of the numerical simulation method was validated through underwater motion experiments. This study investigated the effects of structural parameters and motion modes of bionic dolphin tail fins on their propulsion performance. The results show that flexible tail fins can enhance propulsion performance. Compared to equal-thickness flexible tail fins, variable-thickness flexible tail fins that conform to the structural characteristics of real dolphin tail fins exhibit better propulsion performance. Asymmetric motion modes have a certain thrust-enhancing effect, but altering the frequency ratio F and amplitude ratio H of heaving motion leads to an increase in pitching moment, reducing swimming stability. Additionally, the greater the difference in frequency and amplitude between the up-and-down motions, the larger the pitching moment. The study results provide references for the optimized design and motion control of bionic tail fins.

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基于双向流固耦合仿真的仿生海豚尾鳍水动力特性研究。
采用双向流固耦合技术,对海豚尾鳍的背腹运动进行了仿真,并通过水下运动实验验证了数值模拟方法的可行性。研究了仿生海豚尾鳍的结构参数和运动方式对其推进性能的影响。结果表明,柔性尾翼可以提高飞机的推进性能。与等厚柔性尾鳍相比,符合真实海豚尾鳍结构特征的变厚柔性尾鳍具有更好的推进性能。非对称运动模式具有一定的推力增强作用,但改变升沉运动的频率比F和幅值比H会导致俯仰力矩增大,降低游泳稳定性。此外,上下运动的频率和幅值差越大,俯仰力矩也越大。研究结果可为仿生尾翼的优化设计和运动控制提供参考。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
期刊最新文献
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