中雷诺数下简单倒易模型游泳者的运动学

Thomas Dombrowski, D. Klotsa
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引用次数: 15

摘要

我们计算研究了一个简单的模型互惠游泳者(不对称哑铃)的运动学作为雷诺数(Re)的函数,并研究了惯性的开始和逐渐增加如何影响游泳行为:游泳方向,流动方向和游泳姿势的逆转。我们将游泳泳姿分为两个球体的膨胀和压缩,并将它们与力量和恢复泳姿联系起来。我们发现游泳方向的转换也对应于力量和恢复划水的转换。通过将膨胀和压缩过程中的净位移与Re、游泳者的振幅和两个球体之间的距离按幂律关系进行折叠,我们得到了平均游泳速度的表达式。通过对流体流动的分析,我们发现膨胀过程中的平均流场总是类似于推手,而压缩过程中的平均流场总是类似于推手,但是当对整个循环进行平均时,占主导地位的流场是发生在功率冲程中的流场。我们还将动力和恢复泳姿与扩张和压缩时的游泳效率联系起来,我们发现,令人惊讶的是,动力泳姿并不总是比恢复泳姿更有效率。我们的研究结果可能对生物学和最终的人造游泳者的设计有重要的意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kinematics of a simple reciprocal model swimmer at intermediate Reynolds numbers
We computationally study the kinematics of a simple model reciprocal swimmer (asymmetric dumbbell) as a function of the Reynolds number (Re) and investigate how the onset and gradual increase of inertia impacts the swimming behavior: a reversal in the swim direction, flow directions, and the swim stroke. We divide the swim stroke into the expansion and compression of the two spheres and relate them to power and recovery strokes. We find that the switch in swim direction also corresponds to a switch in power and recovery strokes. We obtain expressions for the mean swimming velocity by collapsing the net displacement during expansion and compression under power law relationships with respect to Re, the swimmer's amplitude, and the distance between the two spheres. Analyzing the fluid flows, we see the averaged flow field during expansion always resembles a pusher and compression always a puller, but when averaged over the whole cycle, the flow that dominates is the one that occurs during the power stroke. We also relate the power and recovery strokes to the swimming efficiency during times of expansion and compression, and we find that the power stroke is, surprisingly, not always more efficient than the recovery stroke. Our results may have important implications for biology and ultimately the design of artificial swimmers.
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