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Fluid Dynamics of Biomimetic Pectoral Fin Propulsion Using Immersed Boundary Method

机译:沉浸式边界法模拟仿生胸鳍的流体动力学

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摘要

Numerical simulations are carried out to study the fluid dynamics of a complex-shaped low-aspect-ratio pectoral fin that performs the labriform swimming. Simulations of flow around the fin are achieved by a developed immersed boundary (IB) method, in which we have proposed an efficient local flow reconstruction algorithm with enough robustness and a new numerical strategy with excellent adaptability to deal with complex moving boundaries involved in bionic flow simulations. The prescribed fin kinematics in each period consists of the power stroke and the recovery stroke, and the simulations indicate that the former is mainly used to provide the thrust while the latter is mainly used to provide the lift. The fin wake is dominated by a three-dimensional dual-ring vortex wake structure where the partial power-stroke vortex ring is linked to the recovery-stroke ring vertically. Moreover, the connection of force production with the fin kinematics and vortex dynamics is discussed in detail to explore the propulsion mechanism. We also conduct a parametric study to understand how the vortex topology and hydrodynamic characteristics change with key parameters. The results show that there is an optimal phase angle and Strouhal number for this complicated fin. Furthermore, the implications for the design of a bioinspired pectoral fin are discussed based on the quantitative hydrodynamic analysis.
机译:进行了数值模拟,以研究执行长圆形游泳的复杂形状的低纵横比的胸鳍的流体动力学。通过开发的浸入边界(IB)方法实现了围绕鳍的流动仿真,其中我们提出了一种有效的局部流动重构算法,该算法具有足够的鲁棒性和新的数值策略,具有出色的适应性,可以应对仿生流动中涉及的复杂移动边界模拟。每个时期规定的鳍运动学包括动力冲程和恢复冲程,并且仿真表明,前者主要用于提供推力,而后者主要用于提供升力。翅片尾流以三维双环涡流尾流结构为主导,其中部分动力冲程涡流环垂直连接到恢复冲程冲程环。此外,详细讨论了力产生与鳍运动学和涡旋动力学的联系,以探索推进机理。我们还进行了参数研究,以了解涡旋拓扑和流体动力特性如何随关键参数而变化。结果表明,该复杂鳍片具有最佳的相位角和斯特劳哈尔数。此外,基于定量流体动力学分析讨论了对生物启发性胸鳍设计的意义。

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