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Parametrical modeling and design optimization of blood plasma separation device with microchannel mechanism

机译:具有微通道机制的血浆分离装置的参数化建模与设计优化

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摘要

This paper presents an analysis of biofluid behavior in a T-shaped microchannel device and a design optimization for improved biofluid performance in terms of particle liquid separation. The biofluid is modeled with single phase shear rate non-Newtonian flow with blood property. The separation of red blood cell from plasma is evident based on biofluid distribution in the microchannels against various relevant effects and findings, including Zweifach-Fung bifurcation law, Fahraeus effect, Fahraeus-Lindqvist effect and cell free phenomenon. The modeling with the initial device shows that this T-microchannel device can separate red blood cell from plasma but the separation efficiency among different bifurcations varies largely. In accordance with the imbalanced performance, a design optimization is conducted. This includes implementing a series of simulations to investigate the effect of the lengths of the main and branch channels to biofluid behavior and searching an improved design with optimal separation performance. It is found that changing relative lengths of branch channels is effective to both uniformity of flow rate ratio among bifurcations and reduction of difference of the flow velocities between the branch channels, whereas extending the length of the main channel from bifurcation region is only effective for uniformity of flow rate ratio.
机译:本文介绍了在T形微通道设备中生物流体行为的分析,以及针对颗粒液体分离方面改进的生物流体性能的设计优化。用具有血液特性的单相剪切速率非牛顿流对生物流体进行建模。基于微通道中生物流体的分布,针对各种相关效应和发现,包括Zweifach-Fung分叉定律,Fahraeus效应,Fahrausus-Lindqvist效应和无细胞现象,可以明显看出红细胞与血浆的分离。初始设备的建模表明,该T型微通道设备可以将红细胞与血浆分离,但是不同分叉之间的分离效率差异很大。根据不平衡的性能,进行设计优化。这包括实施一系列模拟,以研究主通道和分支通道的长度对生物流体行为的影响,并搜索具有最佳分离性能的改进设计。研究发现,改变分支通道的相对长度对分叉间流速比的均匀性和减小分支通道之间流速差的效果均有效,而从分叉区延伸主通道的长度仅对均匀性有效。流量比。

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