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Simulation and fabrication of a branch-channel rhombic micromixer for low pressure drop and short mixing length

机译:用于低压降和短混合长度的分支通道菱形微混合器的仿真与制造

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摘要

The planar micromixers merit easy integration with the microsystem but encounter the problems of high pressure drop and long mixing length for high mixing efficiency over 90%. In this article, an advanced branched rhombic micromixer (BRM) have been designed and investigated by 3D numerical simulations and experiments. Polydimethylsiloxane (PDMS) molding process was used for chip fabrication of the experiment. The CFD-ACE~+ software was applied for modeling simulations. Simulation results showed that this optimum geometry design of four-mixing-unit BRM with the branch position at 700 μm high and 100 μm wide can effectively improve the mixing efficiency over 95% at Reynolds number (Re) 120 with a rather low pressure drop about 9,000 Pa and a short mixing length of 5.5 mm as well. The high mixing efficiency at low pressure drop is attributed to the greatly increased contact interface area and chaotic-convection vortices as well as the low flow resistance with branched channels. The mixing verification is performed by the flow visualization system via the popular rhodamine B dye (10 mM) added DI method for PDMS BRM chips.
机译:平面微混合器易于与微系统集成,但是遇到高压降和长混合长度的问题,以实现超过90%的高混合效率。在本文中,通过3D数值模拟和实验设计并研究了一种先进的分支菱形微混合器(BRM)。聚二甲基硅氧烷(PDMS)成型工艺用于实验芯片的制造。将CFD-ACE〜+软件用于建模仿真。仿真结果表明,具有四个分支位置为700μm和宽度为100μm的BRM的四个混合单元的最佳几何设计可以有效地将雷诺数(Re)120下的混合效率提高到95%以上,并且压降相当低。 9,000 Pa,短混合长度也为5.5 mm。低压降下的高混合效率归因于大大增加的接触界面面积和混乱的对流涡流以及分支通道的低流动阻力。流动可视化系统通过流行的若丹明B染料(10 mM)添加的DI方法对PDMS BRM芯片进行混合验证。

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