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Understanding the mixing process in 3D microfluidic nozzle/diffuser systems: simulations and experiments

机译:了解3D微流体喷嘴/扩散器系统中的混合过程:模拟和实验

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We characterise computationally and experimentally a three-dimensional (3D) microfluidic passive mixer for various Reynolds numbers ranging from 1 to 100, corresponding to primary flow rates of 10-870 mu l min(-1). The 3D mixing channel is composed of multiple curved segments: circular arcs situated in the substrate plane and curved nozzle/diffuser elements normal to the substrate plane. Numerical simulation provides a detailed understanding of the mixing mechanism resulting from the geometrical topology of the mixer. These Comsol software-based simulations reveal the development of two secondary flows perpendicular to the primary flow: a swirling flow resulting from tangential injection of the flow into the nozzle holes and Dean vortices present in the circular arcs. These phenomena are particularly important at a Reynolds number larger than 30, where mixing occurs by chaotic advection. Experimentally, the 3D mixer is fabricated in a monolithic glass substrate by powder blasting machining, exploiting eroding powder beams at various angles of impact with respect to the substrate plane. Experimental mixing was characterised using two coloured dyes, showing nearly perfect mixing for a microfluidic footprint of the order of a few mm(2), in good agreement with the simulations.
机译:我们通过计算和实验来表征三维(3D)微流体无源混合器,其雷诺数范围从1到100,对应于10-870μlmin(-1)的主要流速。 3D混合通道由多个弯曲段组成:位于基材平面中的圆弧和垂直于基材平面的弯曲喷嘴/扩散器元件。数值模拟提供了对由混合器的几何拓扑结构产生的混合机理的详细理解。这些基于Comsol软件的仿真揭示了垂直于主流的两个次级流的发展:由于切向将流切向注入喷嘴孔而产生的旋流和圆弧中存在的Dean涡流。当雷诺数大于30时,这些现象尤为重要,因为在这种情况下,由于对流而发生混合。实验上,通过对粉末玻璃进行喷砂加工,在相对于基板平面以各种冲击角度腐蚀粉末束的情况下,将3D混合器制造在整体式玻璃基板中。实验混合的特征是使用两种有色染料,显示了几毫米(2)数量级的微流体足迹的近乎完美的混合,与模拟非常吻合。

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