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关于自发旋转介电粒子的大量悬浮液中集体运动的缺失。

On the absence of collective motion in a bulk suspension of spontaneously rotating dielectric particles.

作者信息

Das Debasish, Saintillan David

机构信息

Department of Mathematics and Statistics, University of Strathclyde, Livingstone Tower, 26 Richmond Street, Glasgow G1 1XH, UK.

Department of Mechanical and Aerospace Engineering, University of California, San Diego, 9500 Gilman Drive, La Jolla, CA 92093, USA.

出版信息

Soft Matter. 2023 Sep 13;19(35):6825-6837. doi: 10.1039/d3sm00298e.

Abstract

A suspension of dielectric particles rotating spontaneously when subjected to a DC electric field in two dimensions next to a no-slip electrode has proven to be an ideal model for active matter [Bricard , , 2013, , 95-98]. In this system, an electrohydrodynamic (EHD) instability called Quincke rotation was exploited to create self-propelling particles which aligned with each other due to EHD interactions, giving rise to collective motion on large length scales. It is natural to question whether a suspension of such particles in three dimensions will also display collective motion and spontaneously flow like bacterial suspensions do. Using molecular dynamics type simulations, we show that dielectrophoretic forces responsible for chaining in the direction of the applied electric field in conventional electrorheological fluids and the counter-rotation of neighboring particles in these chains prevent collective motion in suspensions undergoing spontaneous particle rotations. Our simulations discover that the fundamental microstructural unit of a suspension under Quincke rotation is a pair of counter-rotating spheres aligned in the direction of the electric field. We perform a linear stability analysis that explains this observation.

摘要

当置于二维无滑移电极旁的直流电场中时,介电粒子的悬浮液会自发旋转,这已被证明是活性物质的理想模型[布里卡尔,2013年,95 - 98页]。在该系统中,利用一种称为昆克旋转的电流体动力学(EHD)不稳定性来创建自推进粒子,这些粒子由于EHD相互作用而相互对齐,从而在大长度尺度上产生集体运动。很自然会有人质疑,这种粒子在三维空间中的悬浮液是否也会像细菌悬浮液那样呈现集体运动并自发流动。通过分子动力学类型的模拟,我们表明,在传统电流变流体中,负责使粒子沿外加电场方向成链的介电泳力以及这些链中相邻粒子的反向旋转会阻止经历自发粒子旋转的悬浮液中的集体运动。我们的模拟发现,在昆克旋转下悬浮液的基本微观结构单元是一对沿电场方向排列的反向旋转球体。我们进行了线性稳定性分析来解释这一观察结果。

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