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3D FLOW DYNAMICS IN A PATTERNED ROUND MICROCHANNEL

机译:圆型微通道中的3D流动动力学

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摘要

The development of MEMS requires deliberate designs for controlling fluids in the low Reynolds number regime. Arranging surface charges in rectangular channels to obtain in-plane or out-of-plane vortices have been studied by previous researchers. However, previous surface modification techniques require different signs of zeta potentials from the other wall surfaces which made it difficult in selecting and coating microchannels. Previously, the opposite polarities are usually adjusted by changing the pH value of the solution with acid chemicals in other researches which made the solution complicated and difficult to simulate a real application. Meanwhile the acid chemicals may also destroy the coating. It is convenient to use same polarity patches if a vortex flow can also be generated. However, it is not clear if the patterned surface charges have the same polarity of zeta potentials as the other walls, what kind flow pattern will be generated and what mechanism behind the flow pattern.Furthermore, the cross-section of previously studied microchannels is usually limited to a rectangular shape. Therefore, the surface charge patterns are usually in 2D since the sidewalls of the rectangular microchannels are difficult to be patterned. However, a channel with round cross-section has better leak-proof performance of the membrane valve. Furthermore, a round channel is also advantageous in mimicking the human vein when a vascular structure is needed in tissue scaffolding, the round microfluidic channel is considered as a good candidate for an artificial capillary vessel. It is anticipated that there will be no stagnation occurs at the corner edges, which occurs at the corners of a rectangular channel, for a round microchannel owing to the perfectly symmetrical velocity profile. This is important when the microfluidic chip is subjected to a separation process such as liquid chromatography.In this paper, effects of patterned surface modification on 3D vortex flows generation in a micro capillary tube under very low Reynolds number have been investigated. Microfabrication technology was successfully employed to pattern surfacecharges on inner surfaces of round capillary tubes, which form non-uniform zeta-potentials. This technique extends the heterogeneous surfaces from flat surface to curved surface. 3D vortices are visualized and measured at the vicinity of tube walls when an electric field is applied across the surfaces utilizing micro resolution PIV. It demonstrated that 3D vortices can also be generated by the patterned surface charges with a same polarity. Experimental results have been compared with the numerical simulations using CFD-ACE+.
机译:MEMS的发展需要有针对性的设计,以在低雷诺数条件下控制流体。以前的研究人员已经研究了在矩形通道中排列表面电荷以获得平面内或平面外涡旋的方法。然而,先前的表面改性技术需要与其他壁表面不同的ζ电势符号,这使得难以选择和涂覆微通道。以前,在其他研究中,通常通过使用酸性化学物质改变溶液的pH值来调节相反的极性,这使得溶液变得复杂且难以模拟实际应用。同时,酸性化学物质也可能破坏涂层。如果还可以产生涡流,则使用相同极性的贴片会很方便。然而,尚不清楚图案化的表面电荷是否具有与其他壁相同的ζ电势极性,将产生哪种流动模式以及该流动模式背后的机理。 此外,先前研究的微通道的横截面通常限于矩形。因此,由于难以对矩形微通道的侧壁进行图案化,因此表面电荷图案通常为二维。但是,具有圆形横截面的通道具有更好的隔膜阀防漏性能。此外,当组织支架中需要血管结构时,圆形通道在模仿人的静脉方面也是有利的,圆形微流体通道被认为是人造毛细血管的良好候选者。可以预期,由于完全对称的速度分布,对于圆形微通道,在矩形通道的拐角处的拐角边缘不会出现停滞现象。当微流体芯片经历诸如液相色谱法的分离过程时,这是重要的。 在本文中,已经研究了在非常低的雷诺数下,图案化的表面改性对微毛细管中3D涡流产生的影响。微细加工技术已成功用于对表面进行图案化 圆形毛细管内表面上的电荷会形成不均匀的ζ电势。该技术将异质表面从平面扩展到曲面。当使用微分辨率PIV在整个表面上施加电场时,可以在管壁附近看到3D涡流并进行测量。结果表明,具有相同极性的图案化表面电荷也可以产生3D涡流。实验结果已经与使用CFD-ACE +的数值模拟进行了比较。

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