School of Mechanical Engineering, Shandong University, Jinan 250061, Shandong, China; Key Laboratory of High Efficiency and Clean Mechanical Manufacture of MOE/Key National Demonstration Center for Experimental Mechanical Engineering Education, Jinan 250061, Shandong, China.
School of Mechanical Engineering, Shandong University, Jinan 250061, Shandong, China; Key Laboratory of High Efficiency and Clean Mechanical Manufacture of MOE/Key National Demonstration Center for Experimental Mechanical Engineering Education, Jinan 250061, Shandong, China.
Anal Chim Acta. 2021 Apr 22;1155:338355. doi: 10.1016/j.aca.2021.338355. Epub 2021 Mar 1.
Due to high mixing performance and simple geometry structure, serpentine micromixer is one typical passive micromixer that has been widely investigated. Traditional zigzag and square-wave serpentine micromixers can achieve sufficient mixing, but tend to induce significant pressure drop. The excessive pressure drop means more energy consumption, which leads to low cost-performance of mixing. To mitigate excessive pressure drop, a novel serpentine micromixer utilizing ellipse curve is proposed. While fluids flowing through ellipse curve microchannels, the flow directions keep continuous changing. Therefore, the Dean vortices are induced throughout the whole flow path. Numerical simulation and visualization experiments are conducted at Reynolds number (Re) ranging from 0.1 to 100. Dean vortices varies with the changing curvature in different ellipse curves, and local Dean numbers are calculated for quantitative evaluation. The results suggest that the ellipse with a larger eccentricity induces stronger Dean vortices, thus better mixing performance can be obtained. A parameter, named mixing performance cost (Mec), is proposed to evaluate the cost-performance of micromixers. Compared with the zigzag, square-wave and other improved serpentine micromixers, the ellipse curve micromixer produces lower pressure drop while have the capability to maintain excellent mixing performance. The ellipse curve micromixer is proved to be more cost-effective for rapid mixing in complex microfluidic systems.
由于混合性能高和几何结构简单,蛇形微混合器是一种典型的被动微混合器,已经得到了广泛的研究。传统的锯齿形和方波蛇形微混合器可以实现充分的混合,但往往会引起显著的压降。过大的压降意味着更多的能量消耗,从而降低了混合的性价比。为了减轻过大的压降,提出了一种利用椭圆曲线的新型蛇形微混合器。当流体流过椭圆曲线微通道时,流动方向不断变化。因此,整个流动路径中都会产生 Dean 涡。在雷诺数(Re)范围为 0.1 至 100 时进行了数值模拟和可视化实验。Dean 涡随不同椭圆曲线中曲率的变化而变化,并计算局部 Dean 数进行定量评估。结果表明,具有较大偏心率的椭圆可以产生更强的 Dean 涡,从而获得更好的混合性能。提出了一个名为混合性能成本(Mec)的参数来评估微混合器的性价比。与锯齿形、方波和其他改进的蛇形微混合器相比,椭圆曲线微混合器在产生较低压降的同时,还具有出色的混合性能。椭圆曲线微混合器在复杂的微流控系统中用于快速混合,被证明具有更高的性价比。