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首页> 外文期刊>International Journal of Heat and Mass Transfer >Crossflow and mixing in obstructed and width-constricted rotating radial microchannel
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Crossflow and mixing in obstructed and width-constricted rotating radial microchannel

机译:阻塞和宽度受限的旋转径向微通道中的错流和混合

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The crossflow and mixing in rotating radial microchannels with various obstruction and/or width-constriction geometries have been investigated to improve samples/reagents mixing using a centrifugal microfluidic platform. It is found that a channel with repeated cycles, or patterns, of obstruction followed by width-constriction (OWC) provides the best mixing result. Crossflow in the microchannel is highly intensified even at moderate rotation speed less than 100rad/s, due to the OWC configuration with increased mixing from a combination of (a) local centrifugal acceleration a_b that arises from flow negotiating corners of the obstructions in the channel, and (b) Coriolis acceleration a_(cor) induced from through-flow in the rotating microchannel, which is highly amplified in the two narrower sub-channels partitioned by the center obstruction in the channel as well as the downstream channel with width constriction. Moreover, mixing is further enhanced with flow splitting at the stagnation point of an obstruction followed by flow recombination with jet-jet impingement mixing downstream of the obstruction and upstream of the width constriction. Numerical and experimental models have been developed and their results agree well with each other. As much as 95% uniformity in mixing can be achieved for a short 30-mm long radial microchannel with repeated OWC patterns at a moderate rotation speed of 73 rad/s with Ek - 0.049 and Ro = 15.4. The performance of the rotating OWC channel far exceeds that of the stationary OWC channel, the rotating unobstructed/obstructed microchannel, and the rotating width-constricted microchannel. Although the present study is focused on momentum and mass transfer in rotating OWC microchannels, the benefit can lend itself to heat and other transfer processes.
机译:已经对具有各种阻塞和/或宽度限制几何形状的旋转径向微通道中的错流和混合进行了研究,以改进使用离心微流控平台的样品/试剂混合。可以发现,具有重复循环或图案阻塞的通道再加上宽度限制(OWC)的通道可提供最佳混合效果。即使是在低于100rad / s的中等转速下,微通道中的横流也会高度增强,这是由于OWC的配置以及混合的混合所致,该混合是由于(a)通道中障碍物的流动协商角产生的局部离心加速度a_b的组合, (b)由旋转微通道中的通流引起的科里奥利加速度a_(cor),在两个较窄的子通道中被放大,该两个较窄的子通道由通道的中心障碍物以及下游通道的宽度受到限制。此外,通过在障碍物的停滞点处进行分流,然后在障碍物下游和宽度收缩部上游与射流-冲击混合进行流重组,进一步增强了混合。已经开发了数值模型和实验模型,其结果相互吻合。对于短的30毫米长的径向微通道,以73 rad / s的适度旋转速度(Ek-0.049和Ro = 15.4)具有重复的OWC模式,可以实现高达95%的混合均匀性。旋转的OWC通道的性能远远超过固定的OWC通道,旋转的无阻塞/阻塞的微通道和旋转的宽度受限制的微通道。尽管本研究的重点是旋转的OWC微通道中的动量和质量传递,但其好处可归结为热量和其他传递过程。

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