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Numerical modeling and experimental investigation of gas-liquid slug formation in a microchannel T-junction

机译:微通道T型接头气液弹塞形成的数值模拟与实验研究

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摘要

Gas-liquid two-phase flow in a microfluidic T-junction with nearly square microchannels of 113 mu m hydraulic diameter was investigated experimentally and numerically. Air and water superficial velocities were 0.018-0.791 m/s and 0.042-0.757 m/s, respectively. Three-dimensional modeling was performed with computational fluid dynamics (CFD) software FLUENT and the volume of fluid (VOF) model. Slug flow (snapping/breaking/jetting) and stratified flow were observed experimentally. Numerically predicted void fraction followed a linear relationship with the homogeneous void fraction, while experimental values depended on the superficial velocity ratio U-C/U-L. Higher experimental velocity slip caused by gas inlet pressure build-up and oscillation caused deviation from numerical predictions. Velocity slip was found to depend on the cross-sectional area coverage of the gas slug, the formation of a liquid film and the presence of liquid at the channel corners. Numerical modeling was found to require improvement to treat the contact angle and contact line slip, and could benefit from the use of a dynamic boundary condition to simulate the compressible gas phase inlet reservoir. (C) 2009 Elsevier Ltd. All rights reserved.
机译:实验和数值研究了微流体T形接头中的气液两相流,该T形接头具有近乎方形的水力直径为方形的微通道。空气和水的表面速度分别为0.018-0.791 m / s和0.042-0.757 m / s。使用计算流体动力学(CFD)软件FLUENT和流体体积(VOF)模型进行三维建模。实验观察到团状流(捕捉/破碎/喷射)和分层流。数值预测的空隙率与均匀空隙率呈线性关系,而实验值取决于表面速度比U-C / U-L。由进气压力的增加和振荡引起的较高的实验速度滑移导致与数值预测的偏差。发现速度滑移取决于气塞的横截面面积,液膜的形成以及通道拐角处液体的存在。发现数值模型需要改进以处理接触角和接触线打滑,并且可以受益于使用动态边界条件来模拟可压缩气相入口储层。 (C)2009 Elsevier Ltd.保留所有权利。

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