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Numerical Investigation on Dielectrophoresis Blood Cell Separation for Different Applied Voltage and Red Blood Cell Size

机译:不同施加电压和红细胞大小介电电泳血细胞分离的数值研究

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Dielectrophoresis (DEP) is a recent technique used to determine the electrical characteristics of the cells, which are then analyzed and exploited for the manipulation and the selection of target cells from a mixture. Each blood components have its unique role and function, thus to separate it is the crucial process of examination. Dielectrophoresis is a technique in which a force is exerted on a dielectric particle when it is subjected to a non-uniform electric field and the particles have not necessarily been to be charged. This paper aims to investigate the dielectrophoresis method for the separation of the blood cells. A microchannel is designed with two inlets and two outlets. At first, blood is penetrated to the inlet and then it appears in the microchannel where it experiences a non-uniform electric field and thus separation of blood cells occurs. Newton's second law is used as the governing equation to determine the particle trajectory during the filtration process which includes drag force, Brownian force and DEP force. The governing equation is solved by the finite element method (FEM). Transient analysis has been done up to 3 seconds. Three different voltage 3, 5 and 7V have been used and the diameter of the red blood cells is varied as 3, 5 and 8 micrometers. The results of these investigations are shown via blood cell trajectory during the filtration process for 3 different voltage and red blood cell diameter with time. Variation of voltage, pressure and velocity profile with microchannel length have also been presented. The computational results show that the best efficient separation occurs in the case of 5V applied voltage and 5 micrometer diameter based red blood cells. These results will aid surgeons and physicians while performing dielectrophoresis based on blood cell separation.
机译:介电电泳(DEP)是一种用于确定细胞电特性的最新技术,然后对其进行分析和开发,以用于从混合物中操作和选择目标细胞。每种血液成分都有其独特的作用和功能,因此将其分离是检查的关键过程。介电泳是一种技术,其中当电介质颗粒受到不均匀的电场时,该力会施加在该颗粒上,并且该颗粒不一定要带电。本文旨在研究介电电泳法分离血细胞的方法。微通道设计有两个入口和两个出口。首先,血液会渗透到入口,然后出现在微通道中,在该通道中会经历不均匀的电场,因此会发生血细胞分离。牛顿第二定律被用作控制方程来确定过滤过程中的颗粒轨迹,包括阻力,布朗力和DEP力。控制方程通过有限元方法(FEM)求解。瞬态分析已完成长达3秒。已经使用了三种不同的电压3、5和7V,红细胞的直径变化为3、5和8微米。这些研究的结果通过3种不同电压和红细胞直径随时间的过滤过程中的血细胞轨迹显示。还提出了电压,压力和速度曲线随微通道长度的变化。计算结果表明,在施加5V电压和5微米直径的红细胞的情况下,最佳分离效果最佳。这些结果将有助于外科医生和医师在进行基于血细胞分离的介电泳时。

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