Patel Kuntal, Stark Holger
Institut für Theoretische Physik, Technische Universität Berlin, Hardenbergstr. 36, 10623 Berlin, Germany.
Soft Matter. 2021 May 12;17(18):4804-4817. doi: 10.1039/d1sm00276g.
Lab-on-a-chip devices based on inertial microfluidics have emerged as a promising technique to manipulate particles in a precise way. Inertial microfluidics exploits internal hydrodynamic forces and the mechanical structure of particles to achieve separation and focusing. The article focuses on the hydrodynamic interaction of two particles. This will help to develop an understanding of the dynamics of particle trains in inertial microfluidics, which are typical structures in multi-particle systems. We perform three-dimensional lattice Boltzmann simulations combined with the immersed boundary method to unravel the dynamics of various mono- and bi-dispersed pairs in inertial microfluidics. We study the influence of different starting positions for mono- and bi-dispersed pairs. We also change their deformability from relatively soft to rigid and choose spherical and biconcave particle shapes. The observed two-particle motions in the present work can be categorized into four types: stable pair, stable pair with damped oscillations, stable pair with bounded oscillations, and unstable pair. We show that stable pairs become unstable when increasing the particle stiffness. Furthermore, a pair with both capsules in the same channel half is more prone to become unstable than a pair with capsules in opposite channel halves.
基于惯性微流控的芯片实验室设备已成为一种有前景的技术,可精确操控颗粒。惯性微流控利用内部流体动力和颗粒的机械结构来实现分离和聚焦。本文聚焦于两个颗粒的流体动力相互作用。这将有助于深入理解惯性微流控中颗粒链的动力学,颗粒链是多颗粒系统中的典型结构。我们结合浸入边界法进行三维格子玻尔兹曼模拟,以揭示惯性微流控中各种单分散和双分散颗粒对的动力学。我们研究了单分散和双分散颗粒对不同起始位置的影响。我们还将它们的可变形性从相对柔软变为刚性,并选择了球形和双凹形颗粒形状。在本研究中观察到的两颗粒运动可分为四种类型:稳定对、带有阻尼振荡的稳定对、带有有界振荡的稳定对和不稳定对。我们表明,增加颗粒刚度时稳定对会变得不稳定。此外,两个胶囊位于同一通道半侧的颗粒对比两个胶囊位于相对通道半侧的颗粒对更易变得不稳定。