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dc electrokinetic transport of cylindrical cells in straight microchannels

机译:直形微通道中圆柱细胞的直流电动迁移

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摘要

Electrokinetic transport of cylindrical cells under dc electric fields in a straight microfluidic channel is experimentally and numerically investigated with emphasis on the dielectrophoretic (DEP) effect on their orientation variations. A two-dimensional multiphysics model, composed of the Navier–Stokes equations for the fluid flow and the Laplace equation for the electric potential defined in an arbitrary Lagrangian–Eulerian framework, is employed to capture the transient electrokinetic motion of cylindrical cells. The numerical predictions of the particle transport are in quantitative agreement with the obtained experimental results, suggesting that the DEP effect should be taken into account to study the electrokinetic transport of cylindrical particles even in a straight microchannel with uniform cross-sectional area. A comprehensive parametric study indicates that cylindrical particles would experience an oscillatory motion under low electric fields. However, they are aligned with their longest axis parallel to the imposed electric field under high electric fields due to the induced DEP effect.
机译:实验和数值研究了直流电在直电场下对圆柱状细胞的电动迁移,并重点研究了其方向变化的介电泳(DEP)效应。二维多物理场模型由捕获流体的Navier-Stokes方程和在任意Lagrangian-Eulerian框架中定义的电势的Laplace方程组成,用于捕获圆柱细胞的瞬态电动运动。颗粒传输的数值预测与所获得的实验结果在数量上是一致的,这表明即使在具有均匀横截面积的笔直微通道中,圆柱体颗粒的电动迁移也应考虑DEP效应。全面的参数研究表明,圆柱形粒子在低电场下会发生振荡运动。但是,由于感应的DEP效应,它们在高电场下的最长轴与施加的电场平行。

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