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Experimental optimization of a passive planar rhombic micromixer with obstacles for effective mixing in a short channel length

机译:具有障碍物的被动平面菱形微型混合器的实验优化,可在短通道长度内有效混合

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This paper presents the performance of a passive planar rhombic micromixer with diamond-shaped obstacles and a rectangular contraction between the rhombi. The device was experimentally optimized using water for high mixing efficiency and a low pressure drop over a wide range of Reynolds numbers (Re = 0.1-117.6) by varying geometrical parameters such as the number of rhombi, the distance between obstacles and the contraction width. Due to the large amount of data generated, statistical methods were used to facilitate and improve the results of the analysis. The results revealed a rank of factors influencing mixing efficiency: Reynolds number > number of rhombi > contraction width > interobstacles distance. The pressure drop measured after three rhombi depends mainly on Re and interobstacle distance. The resulting optimum geometry for the low Re regime has a contraction width of 101 mu m and inter-obstacles distance of 93 mu m, while for the high Re regime a contraction width of 400 v and inter-obstacle distance of 121 mu m are more appropriate. These mixers enabled 80% mixing efficiency creating a pressure drop of 6.0 Pa at Re = 0.1 and 5.1 x 10(4) Pa at Re = 117.6, with a mixer length of 2.5 mu m. To the authors' knowledge, the developed mixer is one of the shortest planar passive micromixers reported to date.
机译:本文介绍了具有菱形障碍物和菱形之间的矩形收缩的无源平面菱形微型混合器的性能。通过改变几何参数(例如菱形的数量,障碍物之间的距离和收缩宽度),使用水对设备进行了实验性优化,以实现高混合效率和在广泛的雷诺数范围(Re = 0.1-117.6)上的低压降。由于生成了大量数据,因此使用统计方法来促进和改善分析结果。结果揭示了影响混合效率的一系列因素:雷诺数>菱形数>收缩宽度>障碍物间距离。在三个菱形之后测得的压降主要取决于Re和障碍物之间的距离。对于低Re态,最佳的几何形状具有101微米的收缩宽度和93微米的障碍物间距,而对于高Re态,最佳的几何形状具有400 v的收缩宽度和121微米的障碍物间距适当。这些混合器可实现80%的混合效率,在Re = 0.1时产生6.0 Pa的压降,在Re​​ = 117.6时产生5.1 x 10(4)Pa的压降,混合器长度为2.5μm。据作者所知,开发的混合器是迄今为止报道的最短的平面无源微型混合器之一。

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