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Numerical and Experimental Analyses of Three-Dimensional Unsteady Flow around a Micro-Pillar Subjected to Rotational Vibration

机译:旋转振动作用下微柱周围三维非定常流动的数值和实验分析

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摘要

The steady streaming (SS) phenomenon is gaining increased attention in the microfluidics community, because it can generate net mass flow from zero-mean vibration. We developed numerical simulation and experimental measurement tools to analyze this vibration-induced flow, which has been challenging due to its unsteady nature. The validity of these analysis methods is confirmed by comparing the three-dimensional (3D) flow field and the resulting particle trajectories induced around a cylindrical micro-pillar under circular vibration. In the numerical modeling, we directly solved the flow in the Lagrangian frame so that the substrate with a micro-pillar becomes stationary, and the results were converted to a stationary Eulerian frame to compare with the experimental results. The present approach enables us to avoid the introduction of a moving boundary or infinitesimal perturbation approximation. The flow field obtained by the micron-resolution particle image velocimetry (micro-PIV) measurement supported the three-dimensionality observed in the numerical results, which could be important for controlling the mass transport and manipulating particulate objects in microfluidic systems.
机译:稳定流(SS)现象在微流体领域引起了越来越多的关注,因为它可以通过零均值振动产生净质量流。我们开发了数值模拟和实验测量工具来分析这种由振动引起的流动,由于其不稳定的特性,这一直是一个挑战。这些分析方法的有效性通过比较三维(3D)流场和在圆形振动条件下在圆柱微柱周围引起的粒子轨迹来确定。在数值模拟中,我们直接求解拉格朗日框架中的流动,以使带有微柱的基底变得固定,然后将结果转换为固定的欧拉框架,以与实验结果进行比较。本方法使我们能够避免引入运动边界或无穷微扰动近似。通过微米分辨率粒子图像测速(micro-PIV)测量获得的流场支持数值结果中观察到的三维,这对于控制微流体系统中的质量传输和操纵微粒对象可能非常重要。

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