Mei Lanju, Cui Defu, Shen Jiayue, Dutta Diganta, Brown Willie, Zhang Lei, Dabipi Ibibia K
Department of Engineering and Aviation Sciences, University of Maryland Eastern Shore, Princess Anne, MD 21853, USA.
Department of Computational Modeling and Simulation Engineering, Old Dominion University, Norfolk, VA 23529, USA.
Micromachines (Basel). 2021 Apr 14;12(4):431. doi: 10.3390/mi12040431.
This paper investigates the electroosmotic micromixing of non-Newtonian fluid in a microchannel with wall-mounted obstacles and surface potential heterogeneity on the obstacle surface. In the numerical simulation, the full model consisting of the Navier-Stokes equations and the Poisson-Nernst-Plank equations are solved for the electroosmotic fluid field, ion transport, and electric field, and the power law model is used to characterize the rheological behavior of the aqueous solution. The mixing performance is investigated under different parameters, such as electric double layer thickness, flow behavior index, obstacle surface zeta potential, obstacle dimension. Due to the zeta potential heterogeneity at the obstacle surface, vortical flow is formed near the obstacle surface, which can significantly improve the mixing efficiency. The results show that, the mixing efficiency can be improved by increasing the obstacle surface zeta potential, the flow behavior index, the obstacle height, the EDL thickness.
本文研究了在具有壁面障碍物且障碍物表面存在表面势不均匀性的微通道中,非牛顿流体的电渗微混合。在数值模拟中,求解了由纳维-斯托克斯方程和泊松-能斯特-普朗克方程组成的完整模型,以获得电渗流场、离子输运和电场,并用幂律模型表征水溶液的流变行为。研究了在不同参数下的混合性能,如双电层厚度、流动行为指数、障碍物表面zeta电位、障碍物尺寸。由于障碍物表面的zeta电位不均匀,在障碍物表面附近形成了涡流,这可以显著提高混合效率。结果表明,通过增加障碍物表面zeta电位、流动行为指数、障碍物高度、双电层厚度,可以提高混合效率。