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推进器-推拉式哑铃的对齐和推进。

Alignment and propulsion of squirmer pusher-puller dumbbells.

机构信息

Theoretical Physics of Living Matter, Institute of Biological Information Processing and Institute for Advanced Simulation, Forschungszentrum Jülich, 52425 Jülich, Germany.

出版信息

J Chem Phys. 2022 May 21;156(19):194901. doi: 10.1063/5.0091067.

Abstract

The properties of microswimmer dumbbells composed of pusher-puller pairs are investigated by mesoscale hydrodynamic simulations employing the multiparticle collision dynamics approach for the fluid. An individual microswimmer is represented by a squirmer, and various active-stress combinations in a dumbbell are considered. The squirmers are connected by a bond, which does not impose any geometrical restriction on the individual rotational motion. Our simulations reveal a strong influence of the squirmers' flow fields on the orientation of their propulsion directions, their fluctuations, and the swimming behavior of a dumbbell. The properties of pusher-puller pairs with an equal magnitude of the active stresses depend only weakly on the stress magnitude. This is similar to dumbbells of microswimmers without hydrodynamic interactions. However, for non-equal stress magnitudes, the active stress implies strong orientational correlations of the swimmers' propulsion directions with respect to each other, as well as the bond vector. The orientational coupling is most pronounced for pairs with large differences in the active-stress magnitude. The alignment of the squirmers' propulsion directions with respect to each other is preferentially orthogonal in dumbbells with a strong pusher and weak puller, and antiparallel in the opposite case when the puller dominates. These strong correlations affect the active motion of dumbbells, which is faster for strong pushers and slower for strong pullers.

摘要

采用多粒子碰撞动力学方法对流体进行介观流体动力学模拟,研究了由推-拉对组成的微泳哑铃的特性。单个微泳者由一个蠕动器表示,并且考虑了哑铃中的各种主动应力组合。蠕动器通过键连接,该键对其各自的旋转运动没有施加任何几何限制。我们的模拟揭示了蠕动器流场对其推进方向的取向、波动以及哑铃的泳动行为的强烈影响。具有相等主动应力的推-拉对的性质仅对应力大小有较弱的依赖性。这类似于没有流体动力相互作用的微泳者哑铃。然而,对于非相等的应力大小,主动应力意味着泳者推进方向之间以及键矢量之间存在强烈的定向相关性。对于具有较大主动应力差的对,定向耦合最为明显。当推强拉弱时,哑铃中蠕动器的推进方向彼此之间的取向优先正交,而当拉强推弱时则相反。这些强烈的相关性影响了哑铃的主动运动,对于强推器,其运动速度更快,而对于强拉器,其运动速度更慢。

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