A novel micromixer with multimixing mechanisms for high mixing efficiency at low Reynolds number

H. L. The, N. Tran-Minh, H. Le-Thanh, F. Karlsen
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引用次数: 6

Abstract

In this paper, we propose a novel passive micromixer structure for high mixing efficiency based on the combination of multimixing principles. With a special structure, our proposed micromixer can create vortices, transversal flows and chaotic advections to provide high mixing efficiency event at low Reynolds number. Moreover, two narrow slits at two ends of each mixing unit remarkably reduce pressure drop, making it easy to be built into micro-devices. We conduct intensive simulation to evaluate the performance of our proposed micromixer by numerically solving the governing Navier-Stokes equation and convection-diffusion equation using COMSOL Multiphysics package. The simulation results indicate that our proposed micromixer may achieve stable mixing efficiency of 80% or above for a wide Reynolds number range from 0.5 to 100. Especially, at Reynolds number (Re) > 30, mixing efficiency is less dependent on Reynolds number. The mixing efficiency of our micromixer is two times higher than mixing efficiency of micromixer based on unbalanced splits and collisions of fluid at the same mixing channel length of 5mm. At Re = 30, our proposed micromixer has high mixing efficiency of 85% with moderate pressure drop ΔP = 12,600Pa.
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一种低雷诺数下具有高混合效率的混合机制的新型微混合器
本文提出了一种基于复合混合原理的新型无源微混合器结构,以提高混合效率。微混合器采用特殊的结构,可以产生涡旋、横向流动和混沌平流,在低雷诺数条件下提供高混合效率。此外,每个混合单元两端的两个窄缝显著降低了压降,使其易于内置到微型设备中。我们使用COMSOL Multiphysics软件包对控制Navier-Stokes方程和对流-扩散方程进行数值求解,以评估我们所提出的微混合器的性能。仿真结果表明,在0.5 ~ 100的较宽雷诺数范围内,微混合器可以实现80%以上的稳定混合效率。特别是在雷诺数(Re) bbb30时,混合效率对雷诺数的依赖较小。在相同的混合通道长度为5mm时,基于流体不平衡分裂和碰撞的混合效率比基于流体不平衡分裂和碰撞的混合效率高2倍。在Re = 30时,微混合器的混合效率高达85%,压降适中ΔP = 12600pa。
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