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Numerical investigation of particle lateral migration in straight channel flows using a direct-forcing immersed boundary method

机译:直流浸没边界法的直通道流动中粒子横向迁移的数值研究

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摘要

Inertia-induced cross-stream migration has been recently exploited for precise position of particles in confined channel flows. In this work, a three-dimensional finite volume based immersed boundary method has been developed to study the lateral migration and hydrodynamic self-assembly of neutrally-buoyant particles in pressure-driven flows. Simulation results show that, in 2D channel flows, the equilibrium position for a circular particle is closer to the centreline for larger particle Reynolds number due to the increasing flow rate, while in 3D square duct flow, the equilibrium position for a spherical particle is near a face centre and is closer to the wall for larger particle Reynolds number. Self-assembly of a pair of particles is observed in 3D square duct flows but not in 2D channel flows. Mechanisms for the self-assembly are discussed. (C) 2020 Elsevier Ltd. All rights reserved.
机译:最近已经利用狭窄的通道流动中粒子的精确位置的惯性诱导的交叉流迁移。 在这项工作中,已经开发了一种基于三维有限体积的浸没边界方法,以研究压力驱动流动中子浮力颗粒的横向迁移和流体动力学自组装。 仿真结果表明,在2D通道流动中,由于流速的增加,圆形粒子的平衡位置是较大的粒子雷诺数的较大粒子雷诺数,而在3D方形管道流动中,用于球形颗粒的平衡位置接近 面部中心,更靠近墙壁,用于更大的粒子雷诺数。 在3D方形管道流中观察到一对颗粒的自组装,但不在2D通道流中观察到。 讨论了自组装的机制。 (c)2020 elestvier有限公司保留所有权利。

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