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Modeling of Ceil Motion in Micro-scale Hydrodynamic-electrical Field

机译:微型流体动力学 - 电场CEIL运动的建模

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A modeling of two-phase system is presented for investigation of the cell motion and deformation in the microchannel subject to the mechanical and electrical coupled forces. In order to evaluate the mechanical force developed by cell membrane, it is treated as an incompressible and elastic shell with uniform thickness capable of shearing and bending deformation. Due to the irregular and complex cell configuration after deformation, the Maxwell stress tensor (MST) method is successfully employed to analyze the dielectrophoretic force. The modified particle binary level set (MPBLS) method is presented to accurately track the moving interface between the two phases, which is vital for a modeling of two-phase system. Afterwards the modified SIMPLER coupled with SIMPLEC is used to numerically solve the incompressible Navier-Stokes equations governing the entire flow field. On basis of the series of methods, the motion and deformation of red blood cell (RBC) in the microchannel under the mechanical and electrical forces are simulated to demonstrate the deformation process and the moving trajectory of RBC. The present study is not only of great value for deeper understanding of some diseases caused by cell abnormality, but also of practical significance for cell manipulation and separation.
机译:提出了一种两相系统的建模,用于对微通道的细胞运动和变形进行电气耦合力的研究。为了评估细胞膜开发的机械力,它被视为具有能够剪切和弯曲变形的均匀厚度的不可压缩和弹性壳。由于变形后的不规则和复杂的电池构造,成功地使用麦克斯韦应力张量(MST)方法来分析介电泳力。提出了修改的粒子二进制集合(MPBLS)方法以精确地跟踪两个阶段之间的移动接口,这对于两相系统的建模至关重要。之后,改进的更简单耦合与SimpleC的耦合到数字上,解决了控制整个流场的不可压缩的Navier-Stokes方程。基于一系列方法,模拟了在机械和电力下微通道中的红细胞(RBC)的运动和变形以证明RBC的变形过程和移动轨迹。目前的研究不仅具有巨大的价值,可以更深入地了解由细胞异常引起的某些疾病,而且对细胞操纵和分离的实际意义。

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