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Undulatory locomotion of flexible foils as biomimetic models for

机译:作为仿生模型的柔性箔片的波动性

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An undulatory pattern of body bending in which waves pass along the body from head to tail is a major mechanism of creating thrust in many fish species during steady locomotion. Analyses of live fish swimming have provided the foundation of our current understanding of undulatory locomotion, but our inability to experimentally manipulate key variables such as body length, flexural stiffness and tailbeat frequency in freely swimming fish has limited our ability to investigate a number of important features of undulatory propulsion. In this paper we use a mechanical flapping apparatus to create an undulatory wave in swimming flexible foils driven with a heave motion at their leading edge, and compare this motion with body bending patterns of bluegill sunfish (Lepomis macrochirus) and clown knifefish (Notopterus chitala). We found similar swimming speeds, Reynolds and Strouhal numbers, and patterns of curvature and shape between these fish and foils, suggesting that flexible foils provide a useful model for understanding fish undulatory locomotion. We swam foils with different lengths, stiffnesses and heave frequencies while measuring forces, torques and hydrodynamics. From measured forces and torques we calculated thrust and power coefficients, work and cost of transport for each foil. We found that increasing frequency and stiffness produced faster swimming speeds and more thrust. Increasing length had minimal impact on swimming speed, but had a large impact on Strouhal number, thrust coefficient and cost of transport. Foils that were both stiff and long had the lowest cost of transport (in mJ m(-1) g(-1)) at low cycle frequencies, and the ability to reach the highest speed at high cycle frequencies
机译:波浪从头到尾沿着身体传播的一种身体弯曲的波动形式是在稳定运动过程中在许多鱼类中产生推力的主要机制。对活鱼游泳的分析为我们目前对波动运动的理解提供了基础,但是我们无法通过实验来操纵自由泳鱼的关键变量(例如,身长,弯曲刚度和拍打频率),这限制了我们研究许多重要特征的能力起伏的推进。在本文中,我们使用机械拍打装置在游泳时在其前缘起伏运动的柔性箔中产生起伏波动,并将此运动与with鱼(Lepomis macrochirus)和小丑刀鱼(Notopterus chitala)的身体弯曲方式进行比较。 。我们发现类似的游泳速度,雷诺数和斯特劳哈尔数,以及这些鱼和金属箔之间的弯曲度和形状模式,表明柔性金属箔为理解鱼的波动运动提供了有用的模型。我们在测量力,扭矩和流体动力学时游动具有不同长度,刚度和升沉频率的金属箔。根据测得的力和扭矩,我们计算了每个箔片的推力和功率系数,功和运输成本。我们发现增加频率和刚度会产生更快的游泳速度和更大的推力。长度的增加对游泳速度的影响很小,但对斯特劳哈尔数,推力系数和运输成本影响很大。坚硬而长的箔在低周期频率下具有最低的运输成本(以mJ m(-1)g(-1)为单位),而在高周期频率下具有最高速度的能力

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