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新型混沌微混合器在低雷诺数下增强混合性能的运动学测量:对比研究

Kinematic Measurements of Novel Chaotic Micromixers to Enhance Mixing Performances at Low Reynolds Numbers: Comparative Study.

作者信息

Naas Toufik Tayeb, Hossain Shakhawat, Aslam Muhammad, Rahman Arifur, Hoque A S M, Kim Kwang-Yong, Islam S M Riazul

机构信息

Gas Turbine Joint Research Team, University of Djelfa, 17000 Djelfa, Algeria.

Department of Industrial and Production Engineering, Jashore University of Science and Technology, Jashore 7408, Bangladesh.

出版信息

Micromachines (Basel). 2021 Mar 28;12(4):364. doi: 10.3390/mi12040364.

Abstract

In this work, a comparative investigation of chaotic flow behavior inside multi-layer crossing channels was numerically carried out to select suitable micromixers. New micromixers were proposed and compared with an efficient passive mixer called a Two-Layer Crossing Channel Micromixer (TLCCM), which was investigated recently. The computational evaluation was a concern to the mixing enhancement and kinematic measurements, such as vorticity, deformation, stretching, and folding rates for various low Reynolds number regimes. The 3D continuity, momentum, and species transport equations were solved by a Fluent ANSYS CFD code. For various cases of fluid regimes (0.1 to 25 values of Reynolds number), the new configuration displayed a mixing enhancement of 40%-60% relative to that obtained in the older TLCCM in terms of kinematic measurement, which was studied recently. The results revealed that all proposed micromixers have a strong secondary flow, which significantly enhances the fluid kinematic performances at low Reynolds numbers. The visualization of mass fraction and path-lines presents that the TLCCM configuration is inefficient at low Reynolds numbers, while the new designs exhibit rapid mixing with lower pressure losses. Thus, it can be used to enhance the homogenization in several microfluidic systems.

摘要

在这项工作中,对多层交叉通道内的混沌流动行为进行了数值对比研究,以选择合适的微混合器。提出了新型微混合器,并与一种最近研究的高效被动混合器——双层交叉通道微混合器(TLCCM)进行了比较。计算评估关注混合增强以及诸如不同低雷诺数工况下的涡度、变形、拉伸和折叠率等运动学测量。通过Fluent ANSYS CFD代码求解三维连续性方程、动量方程和组分输运方程。对于各种流体工况(雷诺数为0.1至25),就运动学测量而言,新构型相对于旧的TLCCM显示出40% - 60%的混合增强,这是最近所研究的。结果表明,所有提出的微混合器都有强烈的二次流,这在低雷诺数下显著增强了流体运动学性能。质量分数和流线的可视化显示,TLCCM构型在低雷诺数下效率低下,而新设计表现出快速混合且压力损失较低。因此,它可用于增强多个微流体系统中的均匀化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/95fe/8066306/23d326dc7435/micromachines-12-00364-g001.jpg

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