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水介质中带电椭球形胶体热泳的数值分析

Numerical Analysis of Thermophoresis of a Charged Spheroidal Colloid in Aqueous Media.

作者信息

Zhou Yi, Yang Yang, Zhu Changxing, Yang Mingyuan, Hu Yi

机构信息

Key Laboratory of High Performance Ship Technology, Ministry of Education, School of Energy and Power Engineering, Wuhan University of Technology, Wuhan 430063, China.

出版信息

Micromachines (Basel). 2021 Feb 23;12(2):224. doi: 10.3390/mi12020224.

Abstract

Thermophoresis of charged colloids in aqueous media has wide applications in biology. Most existing studies of thermophoresis focused on spherical particles, but biological compounds are usually non-spherical. The present paper reports a numerical analysis of the thermophoresis of a charged spheroidal colloid in aqueous media. The model accounts for the strongly coupled temperature field, the flow field, the electric potential field, and the ion concentration field. Numerical simulations revealed that prolate spheroids move faster than spherical particles, and oblate spheroids move slower than spherical particles. For the arbitrary electric double layer (EDL) thickness, the thermodiffusion coefficient of prolate (oblate) spheroids increases (decreases) with the increasing particle's dimension ratio between the major and minor semiaxes. For the extremely thin EDL case, the hydrodynamic effect is significant, and the thermodiffusion coefficient for prolate (oblate) spheroids converges to a fixed value with the increasing particle's dimension ratio. For the extremely thick EDL case, the particle curvature's effect also becomes important, and the increasing (decreasing) rate of thermodiffusion coefficient for prolate (oblate) spheroids is reduced slightly.

摘要

带电胶体在水介质中的热泳现象在生物学中有广泛应用。现有的大多数热泳研究都集中在球形颗粒上,但生物化合物通常是非球形的。本文报道了对带电椭球形胶体在水介质中热泳现象的数值分析。该模型考虑了强耦合的温度场、流场、电势场和离子浓度场。数值模拟表明,长椭球体比球形颗粒移动得更快,扁椭球体比球形颗粒移动得更慢。对于任意的电双层(EDL)厚度,长椭球体(扁椭球体)的热扩散系数随颗粒长半轴与短半轴之间尺寸比的增加而增加(减小)。对于极薄的EDL情况,流体动力学效应显著,长椭球体(扁椭球体)的热扩散系数随着颗粒尺寸比的增加而收敛到一个固定值。对于极厚的EDL情况,颗粒曲率的影响也变得很重要,长椭球体(扁椭球体)热扩散系数的增加(减小)速率略有降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31dd/7926884/79b7deb29dc8/micromachines-12-00224-g001.jpg

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