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Performance Analysis of a Self-Propelling Flat Plate Fin with Joint Compliance

机译:联合合规性自推进平板翅片的性能分析

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Fish fin muscles are compliant and they regulate the stiffness to suit different swimming conditions. This article attempts to understand the significance of presence of compliance in fin muscle with help of a flexible joint flat plate fin model. Blade element method is employed to model hydrodynamics and to compute the forces of interaction during motion of the plate within fluid. The dynamic model of self-propelling fin is developed through multibody dynamics approach considering the hydrodynamic forces as external forces acting on the fin. The derived hydrodynamic model is validated with experiments on rigid flat plate fin. The effect of the joint stiffness and flapping frequency on the propulsion speed and efficiency is investigated through simulations using the derived and validated model. The propulsion efficiency is found to be highly influenced by the joint stiffness at a given flapping frequency. The fin attained maximum propulsion efficiency when the joint stiffness is tuned to a value at which flapping frequency matches near natural frequency of the fin. At this tuned joint stiffness and flapping frequency, the resulted Strouhal numbers are observed to fall within the optimum range (0.2 to 0.4) for maximized propulsion efficiency of flying birds and swimming aquatic animals reported in literature.
机译:鱼鳍肌肉是符合要求的,他们规范僵硬以适应不同的游泳条件。本文试图了解柔性关节平板翅片模型的帮助,了解鳍肌符合规定的意义。叶片元件方法用于模拟流体动力学,并计算流体中板的运动期间的相互作用力。通过将流体动力学的多体动力学方法作为作用在鳍片上的外力,通过多体动力学方法开发了自推进翅片的动态模型。衍生的流体动力学模型用刚性平板翅片的实验验证。使用衍生和验证的模型通过模拟研究了关节刚度和拍摄频率对推进速度和效率的影响。发现推进效率受到给定拍打频率的关节刚度的高度影响。当关节刚度调谐到翅片附近的频率附近的拍打频率匹配的值时,翅片达到了最大推进效率。在这种调谐的关节刚度和拍打频率下,观察到所产生的斯特氏数量在最佳范围内(0.2至0.4),用于在文献中报告的飞禽和游泳水生动物的最大化推进效率。

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