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Investigation of micromixing by acoustically oscillated sharp-edges

机译:通过声学振荡的尖锐边缘进行微混合的研究

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摘要

Recently, acoustically oscillated sharp-edges have been utilized to achieve rapid and homogeneous mixing in microchannels. Here, we present a numerical model to investigate acoustic mixing inside a sharp-edge-based micromixer in the presence of a background flow. We extend our previously reported numerical model to include the mixing phenomena by using perturbation analysis and the Generalized Lagrangian Mean (GLM) theory in conjunction with the convection-diffusion equation. We divide the flow variables into zeroth-order, first-order, and second-order variables. This results in three sets of equations representing the background flow, acoustic response, and the time-averaged streaming flow, respectively. These equations are then solved successively to obtain the mean Lagrangian velocity which is combined with the convection-diffusion equation to predict the concentration profile. We validate our numerical model via a comparison of the numerical results with the experimentally obtained values of the mixing index for different flow rates. Further, we employ our model to study the effect of the applied input power and the background flow on the mixing performance of the sharp-edge-based micromixer. We also suggest potential design changes to the previously reported sharp-edge-based micromixer to improve its performance. Finally, we investigate the generation of a tunable concentration gradient by a linear arrangement of the sharp-edge structures inside the microchannel.
机译:近来,已经利用声振荡的尖锐边缘来实现微通道中的快速且均匀的混合。在这里,我们提出了一个数值模型,用于研究在存在背景流的情况下,基于尖锐边缘的微混合器内部的声学混合。通过使用扰动分析和广义拉格朗日均值(GLM)理论以及对流扩散方程,我们扩展了先前报道的数值模型,以包括混合现象。我们将流变量分为零阶,一阶和二阶变量。这样就得到了三组方程,分别代表背景流量,声学响应和时间平均流。然后依次求解这些方程以获得平均拉格朗日速度,将其与对流扩散方程组合以预测浓度分布。我们通过将数值结果与通过实验获得的不同流速下的混合指数值进行比较来验证我们的数值模型。此外,我们采用我们的模型来研究施加的输入功率和背景流量对基于尖锐边缘的微混合器的混合性能的影响。我们还建议对先前报道的基于尖端的微混合器进行潜在的设计更改,以提高其性能。最后,我们通过微通道内部尖锐边缘结构的线性排列,研究了可调浓度梯度的产生。

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