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形状和冲程参数对轴对称游泳者推进性能的影响。

Effects of shape and stroke parameters on the propulsion performance of an axisymmetric swimmer.

机构信息

Department of Mechanical Engineering, University of Alaska Fairbanks, Fairbanks, AK 99775-5905, USA.

出版信息

Bioinspir Biomim. 2012 Mar;7(1):016012. doi: 10.1088/1748-3182/7/1/016012. Epub 2012 Feb 16.

Abstract

In nature, there exists a special group of aquatic animals which have an axisymmetric body and whose primary swimming mechanism is to use periodic body contractions to generate vortex rings in the surrounding fluid. Using jellyfish medusae as an example, this study develops a mathematical model of body kinematics of an axisymmetric swimmer and uses a computational approach to investigate the induced vortex wakes. Wake characteristics are identified for swimmers using jet propulsion and rowing, two mechanisms identified in previous studies of medusan propulsion. The parameter space of body kinematics is explored through four quantities: a measure of body shape, stroke amplitude, the ratio between body contraction duration and extension duration, and the pulsing frequency. The effects of these parameters on thrust, input power requirement and circulation production are quantified. Two metrics, cruising speed and energy cost of locomotion, are used to evaluate the propulsion performance. The study finds that a more prolate-shaped swimmer with larger stroke amplitudes is able to swim faster, but its cost of locomotion is also higher. In contrast, a more oblate-shaped swimmer with smaller stroke amplitudes uses less energy for its locomotion, but swims more slowly. Compared with symmetric strokes with equal durations of contraction and extension, faster bell contractions increase the swimming speed whereas faster bell extensions decrease it, but both require a larger energy input. This study shows that besides the well-studied correlations between medusan body shape and locomotion, stroke variables also affect the propulsion performance. It provides a framework for comparing the propulsion performance of axisymmetric swimmers based on their body kinematics when it is difficult to measure and analyze their wakes empirically. The knowledge from this study is also useful for the design of robotic swimmers that use axisymmetric body contractions for propulsion.

摘要

在自然界中,存在着一类特殊的水生动物,它们具有轴对称的身体,主要的游动机制是通过周期性的身体收缩在周围流体中产生涡环。以水母为例,本研究建立了轴对称游动生物的身体运动学数学模型,并采用计算方法研究了诱导涡尾流。使用射流推进和划船这两种在之前的水母推进研究中确定的机制,为游泳者识别了尾流特征。通过四个量来探索身体运动学的参数空间:身体形状的度量、冲程幅度、身体收缩持续时间与伸展持续时间之比以及脉动频率。量化了这些参数对推力、输入功率要求和环流产生的影响。两个指标,巡航速度和运动的能量成本,用于评估推进性能。研究发现,具有更大冲程幅度的更扁长形状的游泳者能够游得更快,但运动的成本也更高。相比之下,具有更小冲程幅度的更扁圆形状的游泳者在运动中消耗的能量较少,但游得较慢。与收缩和伸展持续时间相等的对称冲程相比,更快的钟形收缩增加了游泳速度,而更快的钟形伸展降低了速度,但两者都需要更大的能量输入。本研究表明,除了已经研究得很好的水母身体形状与游动之间的相关性之外,冲程变量也会影响推进性能。它为比较基于其身体运动学的轴对称游泳者的推进性能提供了一个框架,当难以通过经验测量和分析它们的尾流时,这是很有用的。本研究的知识也有助于设计使用轴对称身体收缩进行推进的机器人游泳者。

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