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Effects of microchannel geometry on pulsed flow mixing

机译:微通道几何形状对脉冲流混合的影响

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Although the mixing of reagents is often crucial in many microfluidic devices, good mixing in these laminar, low Reynolds number, flows remains a challenge. It was shown in Refs. [Glasgow, I., Aubry, N., 2003. Lab on a Chip 3, p. 114: Glasgow. I.. Batton. J.. Aubry, N., 2004. Lab on a Chip 4, p. 558] that pulsing can induce mixing at the confluence of two inlet microchannels in an efficient manner. In this paper, we show that this mixing is affected by both the geometry of the confluence and the inclusion of features in the channels, which induce secondary flow. More specifically, we study mixing in 200 pm wide by 120 pm deep channels, at flow rates from 48 nl s(-1) to 4.8 mu l s(-1), corresponding to Reynolds numbers of 0.3-30. For the parameter values studied, the pulsed flow technique is more effective at mixing than the secondary flow induced by the channel geometry features, and combining both methods leads to even better mixing. In addition, pulsing the reagents such that they pass multiple times through the spatial features, which induce secondary flow leads to mixing over shorter distances. (C) 2006 Elsevier Ltd. All rights reserved.
机译:尽管试剂的混合在许多微流体装置中通常至关重要,但是在这些层流,低雷诺数的流体中进行良好的混合仍然是一个挑战。它显示在参考文献中。 [Glasgow,I.,Aubry,N.,2003. Lab on Chip 3,p。 114:格拉斯哥I ..巴顿。 J .. Aubry,N.,2004年。《芯片实验室》第4页,第1页。 [558]认为脉冲可以有效地在两个入口微通道汇合处引起混合。在本文中,我们表明这种混合受汇合的几何形状和通道中包含特征的影响,这些特征会导致二次流动。更具体地说,我们研究了在200 pm宽x 120 pm深通道中的混合,流速从48 nl s(-1)到4.8μls(-1),对应于0.3-30的雷诺数。对于所研究的参数值,脉冲流技术在混合方面比通道几何特征引起的二次流更有效,并且两种方法的组合可以实现更好的混合。另外,对试剂施加脉冲以使它们多次通过空间特征,这会引起二次流动,从而导致在较短距离上进行混合。 (C)2006 Elsevier Ltd.保留所有权利。

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