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High-throughput sheathless and three-dimensional microparticle focusing using a microchannel with arc-shaped groove arrays

机译:使用带有弧形槽阵列的微通道的高通量护套和三维微粒聚焦

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Sheathless particle focusing which utilises the secondary flow with a high throughput has great potential for use in microfluidic applications. In this work, an innovative particle focusing method was proposed. This method makes use of a mechanism that takes advantage of secondary flow and inertial migration. The device was a straight channel with arrays of arc-shaped grooves on the top surface. First, the mechanism and expected focusing phenomenon are explained using numerical simulation of the flow field and force balance. A simulation of particle trajectories was conducted as a reference, and then a series of experiments was designed and the effects of changes in particle size, flow rate and quantity of the groove structure were discussed. The microscopic images show that this particle focusing method performed well for different size particles, and the results agreed well with the theory and simulated results. Finally, the channel successfully concentrated Jurkat cells, which showed a good compatibility in the biological assay field. In this work, the arc-shaped groove channel was demonstrated to have the ability to achieve high-throughput, sheathless and three-dimensional particle focusing with simple operations.
机译:使用高通量利用二次流量的护套粒子聚焦具有很大的用途的微流体应用。在这项工作中,提出了一种创新的粒子聚焦方法。该方法利用了利用二次流动和惯性迁移的机制。该装置是具有顶表面上的弧形槽阵列的直通道。首先,使用流场的数值模拟和力平衡来解释机制和预期聚焦现象。探测粒子轨迹的模拟作为参考,然后设计了一系列实验,并且讨论了粒度变化,沟槽结构的变化的影响。微观图像表明,这种粒子聚焦方法对于不同尺寸的粒子表现良好,结果与理论和模拟结果相同。最后,渠道成功集中了Jurkat细胞,其在生物测定域中显示出良好的相容性。在这项工作中,弧形凹槽通道被证明能够实现具有简单操作的高通量,护套和三维粒子聚焦。

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