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Vortex trapping and separation of particles in shear thinning fluids

机译:涡旋薄液中颗粒的涡旋捕获和分离

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摘要

Both enrichment and isolation of target particles from heterogeneous biological or chemical fluid samples are necessary steps in numerous particle-based analyses. We demonstrate, in this work, a vortex-based passive trapping and separation (by size) of particles in the flow of strongly shear thinning xanthan gum solution through a cavity microchannel. Our method utilizes the size-dependent fluid rheology- and inertia-induced lift forces that first align larger particles along the sidewalls of the straight uniform channel section and then drive them toward the microscale vortices developed inside the cavity because of the fluid shear thinning effect. It works effectively at the Reynolds number that is one order of magnitude smaller than the reported inertial vortex trapping for similar-sized particles. Our proposed particle trapping and sorting method in shear thinning fluids will be useful for applications processing medium-volume samples, which may fill the gap between the high-throughput inertial vortex-based passive technique and the usually low-throughput external force-based active techniques.
机译:来自异质生物或化学物质样品的富集和分离目标颗粒是许多基于颗粒的分析中的必要步骤。在这项工作中,我们证明了一种基于涡旋的被动捕获和分离(按大小)通过腔微通道通过腔微型通道的强剪切稀释的黄原胶溶液流动。我们的方法利用尺寸依赖性的流体流变和惯性诱导的提升力,其首先将较大的颗粒沿直线均匀通道部分的侧壁对准,然后由于流体剪切稀疏效果,将它们朝向在腔内开发的微观涡流驱动。它有效地在雷诺数,这是一个小于报告的惯性涡流捕获的一个数量级,用于类似尺寸的粒子。我们所提出的剪切变薄流体中的粒子捕获和分选方法对于加工中等体积样品有用,这可以填充高通量惯性涡流的无源技术与基于低通量的外力的活性技术之间的间隙。

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  • 来源
    《Applied Physics Letters》 |2020年第18期|183701.1-183701.5|共5页
  • 作者单位

    Department of Mechanical Engineering Clemson University Clemson South Carolina 29634-0921 USA;

    Department of Mechanical Engineering Clemson University Clemson South Carolina 29634-0921 USA;

    Department of Mechanical Engineering Clemson University Clemson South Carolina 29634-0921 USA;

    Department of Mechanical Engineering Clemson University Clemson South Carolina 29634-0921 USA School of Instrument Science and Opto-Electronic Engineering Hefei University of Technology Hefei 230009 China;

    School of Instrument Science and Opto-Electronic Engineering Hefei University of Technology Hefei 230009 China;

    Department of Mechanical Engineering Clemson University Clemson South Carolina 29634-0921 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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