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Design and Validation of On-chip Planar Mixer Based on Advection and Viscoelastic Effects

机译:基于平流和粘弹性效应的片上平面混合器的设计与验证

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Mixing at low Reynolds number is usually due to diffusion and requires longer channel lengths for complete mixing. In order to reduce the mixing lengths, advective flow can be induced by varying the channel geometry. Additionally, in non-newtonian fluids, appropriate modifications to channel geometry can be used to aid the mixing process by capitalizing on their viscoelastic nature. Here we have exploited the advection and viscoelastic effects to implement a planar passive micro-mixer. Microfluidic devices incorporating different blend of mixing geometries were conceived. The optimum design was chosen based on the results of the numerical simulations performed in COMSOL. The chosen design had sudden expansion and contraction along with teeth patterns along the channel walls to improve mixing. Mixing of two different dyes was performed to validate the mixing efficiency. Particle dispersion experiments were also carried out. The results indicated effective mixing. In addition, the same design was also found to be compatible with electrical power free pumping mechanism like suction. The proposed design was then used to carry out on-chip chemical cell lysis with human whole blood samples to establish its use with non-newtonian fluids. Complete lysis of the erythrocytes was observed leaving behind the white blood cells at the outlet.
机译:低雷诺数下的混合通常是由于扩散,需要更长的通道长度才能完全混合。为了减小混合长度,可以通过改变通道的几何形状来引起对流。另外,在非牛顿流体中,可以利用对通道几何形状的适当修改,以利用它们的粘弹性来辅助混合过程。在这里,我们利用对流和粘弹性效应来实现平面无源微型混合器。构想了结合不同混合几何形状的微流体装置。基于COMSOL中进行的数值模拟的结果选择了最佳设计。选择的设计具有突然的膨胀和收缩以及沿通道壁的齿形,以改善混合效果。进行两种不同染料的混合以验证混合效率。还进行了颗粒分散实验。结果表明有效混合。另外,还发现相同的设计与诸如抽吸的无电功率泵送机构兼容。然后,将拟议的设计用于人类全血样品的片上化学细胞裂解,以确立其在非牛顿流体中的用途。观察到红细胞完全溶解,在出口处留下白细胞。

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