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Microfluidic particle sorting utilizing inertial lift force

机译:利用惯性提升力的微流控颗粒分选

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A simple passive microfluidic device that continuously separates microparticles is presented. Its development is motivated by the need for specific size micro perfluorocarbon (PFC) droplets to be used for a novel gas embolotherapy method. The device consists of a rectangular channel in which inertial lift forces are utilized to separate particles in lateral distance. At the entrance of the channel, particles are introduced at the center by focusing the flow from a center channel with flow from two side channels. Downstream, large particles will occupy a lateral equilibrium position in shorter axial distance than small particles. At the exit of the channel, flow containing large particles is separated from flow containing small particles. It is shown that 10.2-μm diameter microspheres can be separated from 3.0-μm diameter microspheres with a separation efficiency of 69-78% and a throughput in the order of 2 ? 10~4 particles per minute. Computational Fluid Dynamics (CFD) calculations were done to calculate flow fields and verify theoretical particle trajectories. Theory underlying this research shows that higher separation efficiencies for very specific diameter cut-off are possible. This microfluidic channel design has a simple structure and can operate without external forces which makes it feasible for lab-on-a-chip (LOC) applications.
机译:提出了一种连续分离微粒的简单无源微流体装置。其发展是由于需要将特定尺寸的微全氟化碳(PFC)微滴用于新型气体栓塞治疗方法。该设备由一个矩形通道组成,在该通道中,惯性升力用于沿横向距离分离颗粒。在通道的入口处,通过集中来自中心通道的流和来自两个侧通道的流,将颗粒引入中心。在下游,大颗粒将在比小颗粒短的轴向距离内占据横向平衡位置。在通道的出口,包含大颗粒的流与包含小颗粒的流分离。结果表明,可以将直径为10.2μm的微球与直径为3.0μm的微球分离,分离效率为69-78%,通量约为2μm。每分钟10〜4个粒子。进行了计算流体动力学(CFD)计算,以计算流场并验证理论粒子轨迹。这项研究的基础理论表明,对于非常特定的直径截止,更高的分离效率是可能的。这种微流体通道设计具有简单的结构,并且可以在没有外力的情况下运行,这使其在芯片实验室(LOC)应用中变得可行。

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