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Mixing of a split and recombine micromixer with tapered curved microchannels

机译:分流重组微混合器与锥形弯曲微通道的混合

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摘要

We demonstrate a novel parallel laminar micromixer with two-dimensional staggered curved channels with tapered structures. Dean vortex flows are produced in curved rectangular channels by centrifugal forces. The split structures of the tapered channels result in the uneven split of the main stream and the reduction of the diffusion distance of two fluids. Furthermore, when one stream is injected into the other the impingement effects increase the mixing strength. Cross-sectional concentration distributions and particle trajectories are utilized to examine the flow characteristics inside the curved microchannel numerically. To evaluate the mixing performance of the designed micromixer, four different designs of a curved channel micromixer are introduced for the purpose of comparison. The mixing index of the staggered curved-channel mixer with a tapered channel is 20% higher than those of the other curved-channel mixers: i.e., the staggered curved-channel mixer with sudden contracted channels, the staggered curved-channel mixer with uniform channel width and the continuous curved-channel mixer. However, a comparison of the pressure drop penalty for the mixing is also reported. The pressure drop of the staggered curved-channel mixer with a tapered channel is about 50% higher than those of the other two staggered curved-channel mixers. The effects of various Reynolds numbers (Re) and channel configurations on mixing performances are investigated in terms of the experimental mixing indices and the computational interfacial patterns. It appears that the Dean vortex and split and recombine (SAR) effects provide improved mixing when the Re is increased above 5. At the Re of 50, the channel length necessary for mixing to be achieved is 5 times shorter compared to the case where the Re equals 1. The comparison between the experimental data and numerical results shows a very similar trend.
机译:我们演示了一种新颖的平行层流微混合器,具有带有交错结构的二维交错弯曲通道。迪安涡流在离心力的作用下在弯曲的矩形通道中产生。锥形通道的分离结构导致主流的不均匀分离,并减小了两种流体的扩散距离。此外,当将一种流注入另一种流时,碰撞效果会提高混合强度。横截面浓度分布和颗粒轨迹用于数字地检查弯曲微通道内部的流动特性。为了评估所设计的微型混合器的混合性能,出于比较的目的,介绍了四种不同设计的弯曲通道微型混合器。具有锥形通道的交错弯曲通道混合器的混合指数比其他弯曲通道混合器的混合指数高20%:即具有突然收缩的通道的交错弯曲通道混合器,具有均匀通道的交错弯曲通道混合器宽度和连续弯道混合器。然而,也报告了混合的压降损失的比较。具有锥形通道的交错弯曲通道混合器的压降比其他两个交错弯曲通道混合器的压降高约50%。根据实验混合指数和计算界面模式,研究了各种雷诺数(Re)和通道配置对混合性能的影响。当Re增加到5以上时,似乎Dean涡旋和分裂再结合(SAR)效果提供了更好的混合效果。在Re为50时,要实现混合所需的通道长度比在以下情况下要短5倍: Re等于1。实验数据和数值结果之间的比较显示出非常相似的趋势。

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