Xia H M, Wan S Y M, Shu C, Chew Y T
Department of Mechanical Engineering, National University of Singapore, 10 Kent Ridge Crescent, 119260, Singapore.
Lab Chip. 2005 Jul;5(7):748-55. doi: 10.1039/b502031j. Epub 2005 May 16.
We report two chaotic micromixers that exhibit fast mixing at low Reynolds numbers in this paper. Passive mixers usually use the channel geometry to stir the fluids, and many previously reported designs rely on inertial effects which are only available at moderate Re. In this paper, we propose two chaotic micromixers using two-layer crossing channels. Both numerical and experimental studies show that the mixers are very efficient for fluid manipulation at low Reynolds numbers, such as stretching and splitting, folding and recombination, through which chaotic advection can be generated and the mixing is significantly promoted. More importantly, the generation of chaotic advection does not rely on the fluid inertial forces, so the mixers work well at very low Re. The mixers are benchmarked against a three-dimensional serpentine mixer. Results show that the latter is inefficient at Re = 0.2, while the new design exhibits rapid mixing at Re = 0.2 and at Re of O(10(-2)). The new mixer design will benefit various microfluidic systems.
在本文中,我们报告了两种在低雷诺数下呈现快速混合的混沌微混合器。被动混合器通常利用通道几何形状来搅拌流体,许多先前报道的设计依赖于仅在中等雷诺数下才存在的惯性效应。在本文中,我们提出了两种使用两层交叉通道的混沌微混合器。数值和实验研究均表明,这些混合器在低雷诺数下对流体操控非常有效,比如拉伸与分裂、折叠与重组,通过这些过程可产生混沌平流并显著促进混合。更重要的是,混沌平流的产生不依赖于流体惯性力,因此这些混合器在极低的雷诺数下也能良好运行。这些混合器以一种三维蛇形混合器作为基准进行比较。结果表明,后者在雷诺数为0.2时效率低下,而新设计在雷诺数为0.2以及雷诺数为O(10⁻²)时均呈现出快速混合。新的混合器设计将使各种微流体系统受益。