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微胶囊在垂直流体振动中的被动游动。

Passive swimming of a microcapsule in vertical fluid oscillation.

机构信息

Department of Finemechanics, Graduate School of Engineering, Tohoku University, 6-6-01 Aoba, Aramaki, Aoba-ku, Sendai 980-8579, Japan.

Graduate School of Biomedical Engineering, Tohoku University, 6-6-01 Aoba, Aramaki, Aoba-ku, Sendai 980-8579, Japan.

出版信息

Phys Rev E. 2018 Aug;98(2-1):023108. doi: 10.1103/PhysRevE.98.023108.

Abstract

The artificial microswimmer is a cutting-edge technology with applications in drug delivery and micro-total-analysis systems. The flow field around a microswimmer can be regarded as Stokes flow, in which reciprocal body deformation cannot induce migration. In this study, we propose a microcapsule swimmer that undergoes amoeboidlike shape deformations under fluid oscillation conditions. This is a study on the propulsion principle using a capsule with a solid membrane, and one of only a few studies using fluid oscillation. The microswimmer consists of an elastic capsule containing fluid and a rigid sphere. Opposing forces are generated when fluid oscillations are applied, because the densities of the internal fluid and sphere are different. The opposing forces induce nonreciprocal body deformation, which leads to migration of the microswimmer under Stokes flow conditions. Using numerical simulations, we found that the microswimmer propels itself in one of two modes, i.e., stroke swimming or drag swimming. We discuss the feasibility of the proposed microswimmer and show that the most efficient swimmer can migrate tens of micrometers per second. These findings pave the way for future artificial microswimmer designs.

摘要

人工微游泳者是一种具有药物输送和微全分析系统应用的前沿技术。微游泳者周围的流场可以看作是 Stokes 流,其中反向体变形不能诱导迁移。在这项研究中,我们提出了一种在流体振荡条件下经历阿米巴样形状变形的微胶囊游泳者。这是使用具有固体膜的胶囊的推进原理的研究,并且是仅有的使用流体振荡的少数研究之一。微游泳者由包含流体的弹性胶囊和刚性球体组成。由于内部流体和球体的密度不同,当施加流体振荡时会产生反向力。反向力引起非反向体变形,从而导致在 Stokes 流条件下微游泳者的迁移。通过数值模拟,我们发现微游泳者以两种模式之一推进自身,即划水游泳或阻力游泳。我们讨论了所提出的微游泳者的可行性,并表明最有效的游泳者可以每秒移动数十微米。这些发现为未来的人工微游泳者设计铺平了道路。

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