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Analysis and modeling of flow in rotating spiral microchannels: towards math-aided design of microfluidic systems using centrifugal pumping

机译:旋转螺旋微通道中的流动分析和建模:采用离心泵的微流系统数学辅助设计

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This paper describes the experimental measurement and mathematical modeling of centrifugally-pumped flow in spiral microchannels. Here, the liquid is delivered by the rotation of a circular microchip as depicted before (X. Y. Peng, P. C. H. Li, H. Z. Yu, M. Parameswaran and W. L. Chou, Sens. Actuators, B, 2007, 128, 64-69). The spiral microchannel in it was specially designed to produce a constant centrifugal force component. From experimental measurements, it was found that the flow velocity inside the spiral microchannels was associated with the rotation speed only, but not with the length of the liquid column. The mathematical modeling of liquid flow was constructed based on solving the Navier-Stokes equations of incompressible flow formulated in a new orthogonal curvilinear coordinate system aligned with the channel geometry. The governing equations were simplified under various assumptions, rendering a mathematically-tractable physical model. In addition, a commercial computational fluid dynamics (CFD) program was used to simulate the flow in the spiral microchannel. The predicted liquid flow velocities from the mathematical model and the CFD program showed reasonable agreement with the experimental data. Under proper assumptions, the mathematical model gave a flexible and rather accurate analytical solution using much less computing power. The proposed study demonstrated the effectiveness of the spiral microchannel design in microfluidic applications using centrifugal force. With modifications, this study could be adapted to the simulation and modeling of other centrifugal-pumping microflow systems.
机译:本文介绍了螺旋微通道中离心泵流的实验测量和数学建模。在此,如前所述,通过圆形微芯片的旋转来输送液体(X.Y. Peng,P.C. H. Li,H.Z. Yu,M.Parameswaran和W.L. Chou,Sens.Actuators,B,2007,128,64-69)。其中的螺旋微通道经过专门设计,可产生恒定的离心力分量。从实验测量中发现,螺旋微通道内部的流速仅与旋转速度相关,而与液柱的长度无关。在求解与通道几何形状对齐的新正交曲线坐标系中公式化的不可压缩流的Navier-Stokes方程的基础上,构造了液体流动的数学模型。在各种假设下简化了控制方程,从而提供了数学上可控的物理模型。此外,使用商业计算流体动力学(CFD)程序来模拟螺旋微通道中的流动。通过数学模型和CFD程序预测的液体流速显示出与实验数据合理的一致性。在适当的假设下,数学模型使用更少的计算能力提供了一种灵活而准确的分析解决方案。拟议的研究证明了利用离心力在微流体应用中螺旋微通道设计的有效性。通过修改,该研究可以适用于其他离心泵微流系统的仿真和建模。

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