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Wake structure and hydrodynamic performance of flapping foils mimicking fish fin kinematics

机译:模仿鱼鳍运动学的拍打箔的尾迹结构和水动力性能

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摘要

Numerical simulations are used to investigate the wake structure and hydrodynamic performance of bionic flapping foils. The study is motivated by the quest to understand the fluid dynamics of fish fins and use it in the underwater propulsion. The simulations employ an immersed boundary method that makes it possible to simulate flows with complex moving boundaries on fixed Cartesian grids. A detailed analysis of the vortex topology shows that the wake of flapping foils is dominated by two sets of complex shaped vortex rings that convect at oblique angles to the wake centerline. The wake of these flapping foils is characterized by two oblique jets. Simulations are also used to examine the wake vortex and hydrodynamic performance over a range of Strouhal numbers and maximum pitch angles and the connection between the foil kinematics, vortex dynamics and force production is discussed. The results show that the variety law of the hydrodynamic performance with kinematic parameters strongly depends on the flow dynamics underlying the force production, including the orientation, interconnection and dissipation rate of the vortex rings.
机译:数值模拟用于研究仿生拍打箔的尾流结构和流体动力性能。该研究的动机是寻求了解鱼鳍的流体动力学并将其用于水下推进。模拟采用沉浸边界方法,可以在固定的笛卡尔网格上模拟具有复杂移动边界的流。对涡旋拓扑结构的详细分析表明,拍打箔片的尾流由两组复杂形状的涡旋环控制,这两组涡旋环与尾流中心线成斜角。这些拍打箔片的尾迹以两个斜射流为特征。仿真还用于检查一定范围的Strouhal数和最大桨距角下的尾流涡流和水动力性能,并讨论了箔片运动学,涡流动力学和力产生之间的联系。结果表明,具有运动学参数的流体动力学性能的变化规律在很大程度上取决于形成力的流动动力学,包括涡流环的方向,互连和耗散率。

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