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Experimental and numerical investigation of a scaled-up passive micromixer using fluorescence technique

机译:荧光技术放大的被动式微混合器的实验和数值研究

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摘要

The present paper investigates experimentally and numerically a scaled-up micromixer that combines the mixing principles of focusing/diverging and flow split-and-recombine. The micromixer consists of two units called “cross” and “omega”, which are similar to a zigzag structure. The total length is 199.5 mm with a depth of 3 mm. Fluorescence technique is used in the present study for local quantitative measurements of concentration. Two syringe pumps are used to supply the working fluids at two inlets. The testing range of Reynolds number is at 1 ≤ Re ≤ 50. The results of the experiment, obtained by fluorescence technique, are supported by the mixing visualization. The experimental results show that the mixing efficiency decreases at Re ≤ 10 and increases at Re ≥ 10. This is caused by the change in mixing mechanism from mass-diffusion domination to mass-convection domination. After five cells, the mixing efficiency reaches to 70% at Re = 50. The computational fluid dynamics is applied to assist in the understanding of fluid characteristics in channels. The simulation has a good agreement with the experiment. Based on the simulation results, vortices are observed in the channels at high Re, which could stretch and fold the fluids to enhance the effect of mass-convection on mixing. This design has the potential to be developed for micromixers with high flow rates.
机译:本文在实验和数值上研究了一种放大的微型混合器,该混合器结合了聚焦/扩散和流动分离重组的混合原理。微型混合器由称为“交叉”和“Ω”的两个单元组成,它们类似于之字形结构。总长度为199.5毫米,深度为3毫米。本研究中使用荧光技术对浓度进行局部定量测量。两个注射泵用于在两个入口处供应工作流体。雷诺数的测试范围是1≤Re≤50。混合可视化技术支持了通过荧光技术获得的实验结果。实验结果表明,混合效率在Re≤10时降低,在Re≥10时提高。这是由于混合机理从质量扩散控制变为质量对流控制而引起的。在经过五个单元之后,在Re = 50时,混合效率达到70%。应用计算流体力学来帮助理解通道中的流体特性。仿真与实验吻合良好。根据模拟结果,在高Re的通道中观察到涡流,涡流可以拉伸和折叠流体,从而增强质量对流对混合的影响。这种设计有可能为高流速的微混合器开发。

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