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粘弹性流体中颗粒聚焦与分离的三维数值模拟

Three-Dimensional Numerical Simulation of Particle Focusing and Separation in Viscoelastic Fluids.

作者信息

Ni Chen, Jiang Di

机构信息

School of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Micromachines (Basel). 2020 Sep 30;11(10):908. doi: 10.3390/mi11100908.

Abstract

Particle focusing and separation using viscoelastic microfluidic technology have attracted lots of attention in many applications. In this paper, a three-dimensional lattice Boltzmann method (LBM) coupled with the immersed boundary method (IBM) is employed to study the focusing and separation of particles in viscoelastic fluid. In this method, the viscoelastic fluid is simulated by the LBM with two sets of distribution functions and the fluid-particle interaction is calculated by the IBM. The performance of particle focusing under different microchannel aspect ratios (AR) is explored and the focusing equilibrium positions of the particles with various elasticity numbers and particle diameters are compared to illustrate the mechanism of particle focusing and separation in viscoelastic fluids. The results indicate that, for particle focusing in the square channel (AR = 1), the centerline single focusing becomes a bistable focusing at the centerline and corners as increases. In the rectangular channels (AR < 1), particles with different diameters have different equilibrium positions. The equilibrium position of large particles is closer to the wall, and large particles have a faster lateral migration speed and few large particles migrate towards the channel center. Compared with the square channel, the rectangular channel is a better design for particle separation.

摘要

利用粘弹性微流体技术进行粒子聚焦和分离在许多应用中引起了广泛关注。本文采用三维格子玻尔兹曼方法(LBM)与浸入边界方法(IBM)相结合,研究粘弹性流体中粒子的聚焦和分离。在该方法中,用两组分布函数的LBM模拟粘弹性流体,通过IBM计算流体与粒子的相互作用。探讨了不同微通道纵横比(AR)下粒子聚焦的性能,比较了不同弹性数和粒径的粒子的聚焦平衡位置,以阐明粘弹性流体中粒子聚焦和分离的机制。结果表明,对于方形通道(AR = 1)中的粒子聚焦,随着弹性数增加,中心线单聚焦在中心线和角落处变为双稳态聚焦。在矩形通道(AR < 1)中,不同直径的粒子具有不同的平衡位置。大粒子的平衡位置更靠近壁面,大粒子具有更快的横向迁移速度,很少有大粒子向通道中心迁移。与方形通道相比,矩形通道是更好的粒子分离设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e8f/7599618/a17a72de0b93/micromachines-11-00908-g003.jpg

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