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Effect of pectoral fin kinematics on manta ray propulsion

机译:Pectral Fin Kinematics对Manta Ray推进的影响

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摘要

Recent advancement of bio-inspired underwater vehicles has led to a growing interest in understanding the fluid mechanics of fish locomotion, which involves complex interaction between the deforming structure and its surrounding fluid. Unlike most natural swimmers that undulate their body and caudal fin, manta rays employ an oscillatory mode by flapping their large, flattened pectoral fins to swim forward. Such a lift-based mode can achieve a substantially high propulsive efficiency, which is beneficial to long-distance swimming. In this study, numerical simulations are carried out on a realistic manta ray model to investigate the effect of pectoral fin kinematics on the propulsive performance and flow structure. A traveling wave model, which relates a local deflection angle to radial and azimuthal wavelengths, is applied to generate the motion of the pectoral fins. Hydrodynamic forces and propulsive efficiency are reported for systematically varying kinematic parameters such as wave amplitude and wavelengths. Key flow features, including a leading edge vortex (LEV) that forms close to the tip of each pectoral fin, and a wake consisting of interconnected vortex rings, are identified. In addition, how different fin motions alter the LEV behavior and hence affect the thrust and efficiency is illustrated.
机译:最近的生物启发水下车辆的进步导致对理解鱼类运动的流体力学的兴趣日益增长,这涉及变形结构​​与其周围流体之间的复杂相互作用。与最自然的游泳者不同,这些游泳者波动它的身体和尾鳍,Manta Rays通过拍打其大型扁平的胸鳍来使用振荡模式来向前游泳。这种基于升力的模式可以实现基本上高的推进效率,这对长距离游泳有益。在本研究中,在现实的曼达射线模型上进行了数值模拟,以研究Pectral Fin运动学对推进性能和流动结构的影响。施加与径向和方位角波长的局部偏转角相关的行进波模型以产生胸鳍的运动。报告了流体动力和推进效率,用于系统地改变运动参数,例如波振幅度和波长。键流特征,包括靠近每个胸鳍尖端的前缘涡旋(LEV),以及由互连的涡旋环组成的尾迹。此外,如何不同的翅片运动改变Lev行为,因此影响了推力和效率。

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