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Passive Mixing in Micro channels by Applying Geometric Variations

机译:通过施加几何变体进行微通道中的被动混合

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Passive mixing by applying geometric variations were studied in this research. In respect to the nature of laminar flow in a microchannel, the geometric variations were designed to try to improve the lateral convection. By doing this, the dispersion of solute was not only contributed by diffusion, but also, and more importantly, the convection in the lateral direction. Geometric parameters versus the mixing performance were investigated systematically in T-type channels, by applying a known computational fluidic dynamic (CFD) solver for mi-crofluidics. Various obstacle shapes, sizes and layouts were studied. As the ratio of the height of obstacles to the depth of channel became negative, it was the special case that obstacles became grooves. The mechanism for obstacles to enhance mixing was to create convective effects. However, the asymmetric arrangement of grooves applied a different mechanism to enhance mixing by create helical shaped recirculation of fluids. The stretching and folding of fluids of this mixing mechanism provided a efficient way to reduce the diffusion path in microchannels. The mixing performance of mixers with obstacles were evaluated by mass fraction, and mixers with grooved surfaces were evaluated by particle tracing techniques. The results illustrated that both of the strategies provided potential solutions to microfluidic mixing.
机译:在本研究中研究了通过施加几何变化来进行被动混合。关于微通道中的层流的性质,旨在尝试改善横向对流的几何变化。通过这样做,溶质的分散不仅通过扩散而贡献,而且更重要的是,在横向方向上的对流。通过对MI-Crofvuidics的已知计算流体动态(CFD)求解器应用已知的计算流体动态(CFD)求解器,系统地研究了几何参数与混合性能。研究了各种障碍物,尺寸和布局。随着障碍物的高度与频道深度的比率变得负面,是障碍物变成凹槽的特殊情况。增强混合的障碍的机制是产生对流效应。然而,凹槽的不对称布置施加了一种不同的机制来增强混合通过产生螺旋形状的流体的再循环。这种混合机构的流体的拉伸和折叠提供了减少微通道中的扩散路径的有效方法。通过质量分数评估具有障碍物的混合器的混合剂的混合性能,并通过粒子跟踪技术评估具有带槽表面的混合器。结果表明,两种策略都提供了对微流体混合的潜在溶液。

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