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NUMERICAL SIMULATION OF FLUID FLOW IN DETERMINISTIC LATERAL DISPLACEMENT DEVICES

机译:确定性侧向位移装置中流体流动的数值模拟

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Deterministic lateral displacement (DLD) is a continuous, flow-based micro-particle separation method. DLD takes advantage of the laminar nature of the fluid flow in microchannels by directing the small particles along the main streamline of the fluid flow, while laterally displacing larger particles along the axis of the micropillar array. When optimally designed, this simple and energy-efficient method allows a high-resolution separation of particle mixtures carried along by the liquid at high velocity. In this paper, a numerical modeling of fluid flow inside of different DLD devices at different Re numbers is performed. A parametric study is conducted to assess the variation of theoretical critical particle size for various DLD devices. Parameters that affect flow velocity distribution, such as shift fraction and tilt angle are studied. Simulation results show that both micropillar shift fraction and the tilt angle significantly affect the velocity profile within the DLD device. A model is presented to describe the critical diameter for a wide range of pillar-diameter-to-gap-size ratios. The possibility of achieving greater throughput, while preserving flow characteristics and therefore particle separation efficiency, is demonstrated.
机译:确定性横向位移(DLD)是一种基于流动的连续微粒分离方法。 DLD通过沿流体流的主要流线引导小颗粒,同时沿微柱阵列的轴横向移动较大的颗粒,从而利用微通道中流体的层流性质。如果进行了最佳设计,则这种简单且节能的方法可以高分辨率分离由液体携带的高速的颗粒混合物。在本文中,对不同Re数下不同DLD装置内部的流体流动进行了数值建模。进行了参数研究,以评估各种DLD设备的理论临界粒径的变化。研究了影响流速分布的参数,例如位移分数和倾斜角。仿真结果表明,微柱位移分数和倾斜角均会显着影响DLD设备内的速度分布。提出了一个模型来描述各种直径范围的柱子的临界直径。展示了在保持流动特性并因此保持颗粒分离效率的同时获得更大产量的可能性。

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