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CDF Analysis of Particle Magnetophoresis in Multiphase Continuous-Flow Bioseparators

机译:多相连续流生物分离器中颗粒磁致变的CDF分析

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The use of magnetic particles has recently expanded for a process known as detoxification in which different toxins are captured from the bloodstream of septic patients. Due to the laminar flow developed in microfluidic devices, the particle separation after the toxin capture can be carried out in a continuous mode using multiphase microfluidic channels. In this work, the design for a two-phase continuous-flow microseparator and an optimization study for the separation of magnetic beads from blood are presented. The numerical method includes a combination of magnetic and fluidic computational models that were solved using the VOF method with the commercial flow solver FLOW-3D, whereas an external Fortran subroutine was employed for the calculation of the magnetic fields and forces. For optimization purposes, a dimensionless number J is introduced. The results show that complete and safe separation is achieved only for a certain value of J (≈0.3). To the best of our knowledge, this is the first computational study of the interaction between two different fluids flowing simultaneously in the device that takes into account two-way coupled particle-fluid interactions in the flow field and the particle motion effects as they cross the interface between the fluids under various magnetic field intensities.
机译:磁性颗粒的用途近来已扩展到被称为排毒的过程,在该过程中,败血病患者的血液中捕获了不同的毒素。由于在微流体装置中形成层流,毒素捕获后的颗粒分离可以使用多相微流体通道以连续模式进行。在这项工作中,提出了两相连续流微分离器的设计以及从血液中分离磁珠的优化研究。数值方法包括电磁和流体计算模型的组合,这些模型使用VOF方法与商用流动求解器FLOW-3D求解,而外部Fortran子例程用于计算磁场和力。为了优化目的,引入了无量纲数J。结果表明,仅对于一定的J(≈0.3),才能实现完全安全的分离。据我们所知,这是对同时在设备中流动的两种不同流体之间的相互作用进行的首次计算研究,其中考虑了流场中的双向耦合颗粒-流体相互作用以及当颗粒穿过管道时的颗粒运动效应。各种磁场强度下流体之间的界面。

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