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力与形状作为微游动的决定因素:对同步性和阻力利用的影响

Forces and shapes as determinants of micro-swimming: effect on synchronisation and the utilisation of drag.

作者信息

Pande Jayant, Smith Ana-Sunčana

机构信息

Institute for Theoretical Physics, Friedrich-Alexander University Erlangen-Nuremberg, Erlangen, Germany.

出版信息

Soft Matter. 2015 Mar 28;11(12):2364-71. doi: 10.1039/c4sm02611j.

Abstract

In this analytical study we demonstrate the richness of behaviour exhibited by bead-spring micro-swimmers, both in terms of known yet not fully explained effects such as synchronisation, and hitherto undiscovered phenomena such as the existence of two transport regimes where the swimmer shape has fundamentally different effects on the velocity. For this purpose we employ a micro-swimmer model composed of three arbitrarily-shaped rigid beads connected linearly by two springs. By analysing this swimmer in terms of the forces on the different beads, we determine the optimal kinematic parameters for sinusoidal driving, and also explain the pusher/puller nature of the swimmer. Moreover, we show that the phase difference between the swimmer's arms automatically attains values which maximise the swimming speed for a large region of the parameter space. Apart from this, we determine precisely the optimal bead shapes that maximise the velocity when the beads are constrained to be ellipsoids of a constant volume or surface area. On doing so, we discover the surprising existence of the aforementioned transport regimes in micro-swimming, where the motion is dominated by either a reduction of the drag force opposing the beads, or by the hydrodynamic interaction amongst them. Under some conditions, these regimes lead to counter-intuitive effects such as the most streamlined shapes forming locally the slowest swimmers.

摘要

在这项分析研究中,我们展示了珠簧微型游泳器所表现出的行为丰富性,这体现在一些已知但尚未完全解释清楚的效应上,比如同步现象,以及迄今尚未发现的现象,比如存在两种输运模式,在这两种模式下,游泳器形状对速度有着根本不同的影响。为此,我们采用了一个由三个任意形状的刚性珠子通过两个弹簧线性连接而成的微型游泳器模型。通过分析作用在不同珠子上的力来研究这个游泳器,我们确定了正弦驱动的最佳运动学参数,还解释了游泳器的推/拉性质。此外,我们表明,在参数空间的很大区域内,游泳器臂之间的相位差会自动达到使游泳速度最大化的值。除此之外,当珠子被限制为具有恒定体积或表面积的椭球体时,我们精确地确定了使速度最大化的最佳珠子形状。这样做时,我们发现了微型游泳中上述输运模式的惊人存在,在这种模式下,运动要么由对抗珠子的阻力减小主导,要么由它们之间的流体动力相互作用主导。在某些条件下,这些模式会导致一些违反直觉的效应,比如最流线型的形状在局部形成最慢的游泳器。

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