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Numerical simulation of the electric field induced in a contactless dielectrophoretic quadrupole cell separator

机译:非接触式介电泳四极细胞分离器中诱导的电场的数值模拟

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摘要

Purpose This study aims to propose a contactless and continuous dielectrophoretic cell-separation device using quadrupole electric field. To examine the separation performance, numerical simulations of the electric field in the cross-section of the glass capillary installed in the center of the quadrupole electrode were conducted. Design/methodology/approach To estimate the magnitude of the dielectrophoretic force induced on cells, electrostatic analysis was performed by using a boundary-fitted coordinate system.Distribution of the electric field and gradient of the electric field square in the cross-section of the glass capillary were simulated for various ratios of radii of the glass capillary to the electrode rod. Findings The distribution of the electric field was found to have a cone-like profile about the center axis of the glass capillary with maximum at the internal surface of the glass capillary. The magnitude of the gradient of electric field square had similar distribution as that of the electric field, but had steeper slope near the internal surface of the glass capillary. The optimal values of the ratio of radii and the applied voltage were also estimated to achieve the local electric field strength suitable for cell separation. Originality/value One major advantage of the proposed device is simple and low fabrication cost, in addition to its contactless structure free from cell damage. Derived knowledge is instructive in achieving high-throughput cell separation without the use of devices of complex structure.
机译:目的本研究旨在使用四极电场提出一种非接触和连续的介电泳细胞分离装置。为了检查分离性能,进行安装在四极电极中心的玻璃毛细管横截面中的电场的数值模拟。设计/方法/方法来估计电池上诱导的电泳力的大小,通过使用边界坐标系来进行静电分析。在玻璃横截面中的电场方形的电场和电场方形的电场和梯度进行静电分析模拟毛细血管用于将玻璃毛细管的玻璃毛细管的半径的比例进行模拟。发现电场的分布被发现围绕玻璃毛细管的中心轴线具有锥形曲线,其最大在玻璃毛细管的内表面。电场正方形梯度的大小与电场的梯度相似,但是在玻璃毛细管的内表面附近具有陡峭的斜率。还估计了半径和施加电压比率的最佳值以实现适合于细胞分离的局部电场强度。除了没有细胞损伤的非接触式结构之外,制造装置的原创性/值是简单而低的制造成本。由于在不使用复杂结构的装置的情况下实现高吞吐量细胞分离导致的知识是有效的。

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