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High-throughput inertial particle focusing in a curved microchannel: Insights into the flow-rate regulation mechanism and process model

机译:弯曲微通道中的高通量惯性粒子聚焦:深入了解流量调节机制和过程模型

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摘要

In this work, we design and fabricate a miniaturized spiral-shaped microchannel device which can be used for high-throughput particle/cell ordering, enrichment, and purification. To probe into the flow rate regulation mechanism, an experimental investigation is carried out on the focusing behaviors of particles with significantly different sizes in this device. A complete picture of the focusing position shifting process is unfolded to clarify the confusing results obtained from flow regimes with different dominant forces in past research. Specifically, with the increase of the flow rate, particles are observed to first move towards the inner wall under the dominant inertial migration, then stabilize at a specific position and finally shift away from the inner wall due to the alternation of the dominant force. Novel phenomena of focusing instability, co-focusing, and focusing position interchange of differently sized particles are also observed and investigated. Based on the obtained experimental data, we develop and validate, for the first time, a five-stage model of the particle focusing process with increasing flow rate for interpreting particle behaviors in terms of the competition between inertial lift and Dean drag forces. These new experimental findings and the proposed process model provide an important supplement to the existing mechanism of inertial particle flow and enable more flexible and precise particle manipulation. Additionally, we examine the focusing behaviors of bioparticles with a polydisperse size distribution to validate the explored mechanisms and thus help realize efficient enrichment and purification of these particles.
机译:在这项工作中,我们设计并制造了可用于高通量颗粒/细胞有序化,富集和纯化的小型螺旋形微通道设备。为了探究流速调节机制,对该装置中尺寸明显不同的颗粒的聚焦行为进行了实验研究。聚焦位置移动过程的完整图片已展开,以阐明过去研究中从具有不同主导力的流动状态中获得的令人困惑的结果。具体而言,随着流速的增加,观察到颗粒首先在惯性惯性迁移下朝着内壁移动,然后稳定在特定位置,最后由于惯性力的交替而从内壁移开。还观察和研究了不同尺寸粒子的聚焦不稳定性,共同聚焦和聚焦位置互换的新现象。基于获得的实验数据,我们首次开发并验证了一个五阶段的粒子聚焦过程模型,该模型通过增加流速来根据惯性升力与Dean阻力之间的竞争来解释粒子行为。这些新的实验结果和拟议的过程模型为惯性粒子流的现有机制提供了重要的补充,并使粒子操作更灵活,更精确。此外,我们检查了具有多分散尺寸分布的生物粒子的聚焦行为,以验证所探索的机制,从而帮助实现这些粒子的有效富集和纯化。

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