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Holographic microscopy and microfluidics platform for measuring wall stress and 3D flow over surfaces textured by micro-pillars

机译:全息显微镜和微流控平台用于测量微柱纹理表面上的壁应力和3D流动

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摘要

Understanding how fluid flow interacts with micro-textured surfaces is crucial for a broad range of key biological processes and engineering applications including particle dispersion, pathogenic infections, and drag manipulation by surface topology. We use high-speed digital holographic microscopy (DHM) in combination with a correlation based de-noising algorithm to overcome the optical interference generated by surface roughness and to capture a large number of 3D particle trajectories in a microfluidic channel with one surface patterned with micropillars. It allows us to obtain a 3D ensembled velocity field with an uncertainty of 0.06% and 2D wall shear stress distribution at the resolution of ~65 μPa. Contrary to laminar flow in most microfluidics, we find that the flow is three-dimensional and complex for the textured microchannel. While the micropillars affect the velocity flow field locally, their presence is felt globally in terms of wall shear stresses at the channel walls. These findings imply that micro-scale mixing and wall stress sensing/manipulation can be achieved through hydro-dynamically smooth but topologically rough micropillars.
机译:对于广泛的关键生物学过程和工程应用(包括颗粒分散,病原性感染和通过表面拓扑进行的拖曳操作),了解流体如何与微织构表面相互作用至关重要。我们将高速数字全息显微术(DHM)与基于相关性的降噪算法结合使用,以克服表面粗糙度产生的光学干扰,并在微流体通道中捕获大量3D粒子轨迹,其中一个表面由微柱构图。它使我们能够以0.065%的不确定度获得3D整体速度场,并且以〜65μμPa的分辨率获得2D壁面剪应力分布。与大多数微流体中的层流相反,我们发现带纹理的微通道的流动是三维且复杂的。虽然微柱局部地影响速度流场,但从通道壁处的壁剪切应力的角度来看,它们的存在被整体感觉到。这些发现暗示可以通过流体动力学上光滑但拓扑结构粗糙的微柱来实现微尺度混合和壁应力感测/操纵。

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