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Hydrodynamic particle focusing design using fluid-particle interaction

机译:利用流体-粒子相互作用的流体动力粒子聚焦设计

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摘要

For passive sheathless particles focusing in microfluidics, the equilibrium positions of particles are typically controlled by micro channels with a V-shaped obstacle array (VOA). The design of the obstacles is mainly based on the distribution of flow streamlines without considering the existence of particles. We report an experimentally verified particle trajectory simulation using the arbitrary Lagrangian-Eulerian (ALE) fluid-particle interaction method. The particle trajectory which is strongly influenced by the interaction between the particle and channel wall is systematically analyzed. The numerical experiments show that the streamline is a good approximation of particle trajectory only when the particle locates on the center of the channel in depth. As the advantage of fluid-particle interaction method is achieved at a high computational cost and the streamline analysis is complex, a heuristic dimensionless design objective based on the Faxen's law is proposed to optimize the VOA devices. The optimized performance of particle focusing is verified via the experiments and ALE method.
机译:对于聚焦在微流体中的无源无鞘粒子,粒子的平衡位置通常由具有V形障碍物阵列(VOA)的微通道控制。障碍物的设计主要基于流线的分布,而不考虑颗粒的存在。我们报告了使用任意拉格朗日-欧拉(ALE)流体粒子相互作用方法的实验验证的粒子轨迹模拟。系统地分析了受颗粒与通道壁相互作用影响的颗粒轨迹。数值实验表明,仅当粒子位于深度通道中心时,流线才是粒子轨迹的良好近似。由于流体-颗粒相互作用方法的优点是计算成本高,流线分析复杂,因此提出了一种基于Falen定律的启发式无量纲设计目标,以优化VOA设备。通过实验和ALE方法验证了粒子聚焦的优化性能。

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