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首页> 外文期刊>Journal of Fluids and Structures >Effect of the stiffness, inertia and oscillation kinematics on the thrust generation and efficiency of an oscillating-foil propulsion system
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Effect of the stiffness, inertia and oscillation kinematics on the thrust generation and efficiency of an oscillating-foil propulsion system

机译:刚度,惯性和振荡运动学对摆动箔推进系统推力产生和效率的影响

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摘要

This paper presents an experimental study that has investigated the effects of the foil stiffness, inertia and oscillation kinematics on the thrust generation and efficiency of a flexible oscillating-foil propulsion system. A semi-empirical damped-oscillator model, which included a quadratic damping element, was developed and fitted to the experimental results. The model was used to develop explanations for the observed trends in the propulsive performance. For all of the foils constructed for the study, a consistent relationship between the efficiency and frequency ratio was observed. The maximum efficiency occurred at the same frequency ratio that resulted in both a beneficial phasing of the deformation with respect to the driven motion and also the maximum overall amplitude of the motion. For foils of equivalent resonant frequency operating at the same frequency ratio, the stiffer and heavier foils were found to develop greater thrust, likely because the lower effective damping allowed for a greater amplitude of the motion. Increasing the amplitude of the driven motion was found to cause the frequency ratio providing the maximum efficiency to shift towards lower values. The use of combined pitch and heave motions was shown to increase efficiency while reducing thrust compared to the heave-only case. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文提出了一项实验研究,该研究研究了箔片刚度,惯性和振动运动学对柔性振荡箔推进系统推力产生和效率的影响。建立了一个包含二次阻尼元件的半经验阻尼振荡器模型,并将其拟合到实验结果中。该模型用于对所观察到的推进性能趋势进行解释。对于研究中构造的所有箔片,观察到效率和频率比之间的一致关系。最大效率发生在相同的频率比上,这导致相对于从动运动的变形进行有利的定相,并导致运动的最大整体振幅。对于以相同频率比工作的等效共振频率的箔片,发现较硬和较重的箔片会产生更大的推力,这可能是因为较低的有效阻尼允许较大的运动幅度。发现增加驱动运动的幅度会导致提供最大效率的频率比向较低值移动。与仅升沉情况相比,结合使用俯仰和升沉运动可以提高效率,同时减少推力。 (C)2015 Elsevier Ltd.保留所有权利。

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