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旋转圆盘上U形通道对流体混合的增强作用。

Enhancement of Fluid Mixing with U-Shaped Channels on a Rotating Disc.

作者信息

Hsu Chi-Wei, Shih Po-Tin, Chen Jerry M

机构信息

Department of Mechanical Engineering, National Chung Hsing University, Taichung 402, Taiwan.

出版信息

Micromachines (Basel). 2020 Dec 15;11(12):1110. doi: 10.3390/mi11121110.

Abstract

In this study, centrifugal microfluidics with a simple geometry of U-shaped structure was designed, fabricated and analyzed to attain rapid and efficient fluid mixing. Visualization experiments together with numerical simulations were carried out to investigate the mixing behavior for the microfluidics with single, double and triple U-shaped structures, where each of the U-structures consisted of four consecutive 90° bends. It is found that the U-shaped structure markedly enhances mixing by transverse secondary flow that is originated from the Coriolis-induced vortices and further intensified by the Dean force generated as the stream turns along the 90° bends. The secondary flow becomes stronger with increasing rotational speed and with more U-shaped structures, hence higher mixing performance. The mixing efficiency measured for the three types of mixers shows a sharp increase with increasing rotational speed in the lower range. As the rotational speed further increases, nearly complete mixing can be achieved at 600 rpm for the triple-U mixer and at 720 rpm for the double-U mixer, while a maximum efficiency level of 83-86% is reached for the single-U mixer. The simulation results that reveal detailed characteristics of the flow and concentration fields are in good agreement with the experiments.

摘要

在本研究中,设计、制作并分析了具有简单U形结构几何形状的离心微流控装置,以实现快速高效的流体混合。进行了可视化实验和数值模拟,以研究具有单、双和三个U形结构的微流控装置的混合行为,其中每个U形结构由四个连续的90°弯道组成。研究发现,U形结构通过横向二次流显著增强了混合效果,这种二次流源于科里奥利力诱导的涡旋,并随着流体沿90°弯道转弯时产生的迪恩力而进一步增强。随着转速的增加和U形结构数量的增多,二次流变得更强,从而混合性能更高。三种类型混合器的混合效率在较低转速范围内随转速增加而急剧上升。随着转速进一步增加,三U形混合器在600 rpm时、双U形混合器在720 rpm时可实现近乎完全混合,而单U形混合器的最大效率水平达到83 - 86%。揭示流动和浓度场详细特征的模拟结果与实验结果吻合良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e10/7765561/c95deb141949/micromachines-11-01110-g001.jpg

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