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Progress towards the design and numerical analysis of a 3D microchannel biochip separator

机译:3D微通道生物芯片分离器设计和数值分析的进展

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摘要

This paper reports the design and numerical analysis of a three-dimensional biochip plasma blood separator using computational fluid dynamics techniques. Based on the initial configuration of a two-dimensional (2D) separator, five three-dimensional (3D) microchannel biochip designs are categorically developed through axial and plenary symmetrical expansions. These include the geometric variations of three types of the branch side channels (circular, rectangular, disc) and two types of the main channel (solid and concentric). Ignoring the initial transient behaviour and assuming that steady-state flow has been established, the behaviour of the blood fluid in the devices is algebraically analysed and numerically modelled. The roles of the relevant microchannel mechanisms, i.e. bifurcation, constriction and bending channel, on promoting the separation process are analysed based on modelling results. The differences among the different 3D implementations are compared and discussed. The advantages of 3D over 2D separator in increasing separation volume and effectively depleting cell-free layer fluid from the whole cross section circumference are addressed and illustrated.
机译:本文报道了使用计算流体动力学技术的三维生物芯片血浆血液分离器的设计和数值分析。基于二维(2D)分离器的初始配置,通过轴向和全体对称扩展,共开发了五个三维(3D)微通道生物芯片设计。这些包括三种类型的分支侧通道(圆形,矩形,圆盘)和两种类型的主通道(实心和同心)的几何变化。忽略初始瞬态行为,并假设已建立稳态流,则对设备中的血液流体的行为进行代数分析和数值建模。根据建模结果,分析了相关的微通道机制(即分叉,收缩和弯曲通道)在促进分离过程中的作用。比较和讨论了不同3D实现之间的差异。 3D相对于2D分离器在增加分离体积和有效地从整个横截面圆周消耗无细胞层流体方面的优势已得到解决和说明。

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