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Upscaling immiscible two-phase dispersed flow in homogeneous porous media: A mechanical equilibrium approach

机译:在均质多孔介质中扩大不混溶的两相分散流:一种机械平衡方法

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摘要

In this work, we model immiscible two-phase dispersed flow in homogeneous porous media by upscaling the governing mass and momentum transport equations at the pore scale using the method of volume averaging. The model consists of a closed set of macroscopic equations for mass and momentum transport applicable for the dispersed and continuous phases. Furthermore, under the local mechanical equilibrium assumption, only one macroscopic equation arises for momentum transport, which resembles an extension of Darcy's law; whereas for mass transport, the equilibrium model reduces to the continuity equation. These macroscopic models are written in terms of effective medium coefficients that are computed from solving the associated closure problems in representative regions of the pore scale. After performing a parametric analysis, we observe that the magnitude of the longitudinal component of the permeability like coefficient increases with the saturation and viscosity of the dispersed phase. We validated the model by comparing the predictions of the permeability coefficient with experimental data available in the literature. The results exhibit a relative error percent that ranges from 1% to 15%. (C) 2014 Elsevier Ltd. All rights reserved.
机译:在这项工作中,我们通过使用体积平均法在孔隙尺度上放大控制质量和动量传输方程,对均质多孔介质中不混溶的两相分散流进行建模。该模型由适用于分散相和连续相的质量和动量传递的封闭式宏观方程组组成。此外,在局部力学平衡假设下,动量传输只产生一个宏观方程,这类似于达西定律的扩展。而对于传质,平衡模型简化为连续性方程。这些宏观模型是根据有效介质系数编写的,有效介质系数是通过求解孔尺度代表区域中的关联封闭问题而计算得出的。在执行参数分析后,我们观察到渗透率类似系数的纵向分量的大小随分散相的饱和度和粘度而增加。我们通过将渗透系数的预测与文献中提供的实验数据进行比较来验证模型。结果显示相对误差百分比范围为1%至15%。 (C)2014 Elsevier Ltd.保留所有权利。

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