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Thermodynamically Constrained Averaging Theory Approach for Modeling Flow and Transport Phenomena in Porous Medium Systems: 4. Species Transport Fundamentals

机译:热力学约束平均理论方法在多孔介质系统中的流动和传输现象建模:4.物种迁移基础

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摘要

This work is the fourth in a series of papers on the thermodynamically constrained averaging theory (TCAT) approach for modeling flow and transport phenomena in multiscale porous medium systems. The general TCAT framework and the mathematical foundation presented in previous works are built upon by formulating macroscale models for conservation of mass, momentum, and energy, and the balance of entropy for a species in a phase volume, interface, and common curve. In addition, classical irreversible thermodynamic relations for species in entities are averaged from the microscale to the macroscale. Finally, we comment on alternative approaches that can be used to connect species and entity conservation equations to a constrained system entropy inequality, which is a key component of the TCAT approach. The formulations detailed in this work can be built upon to develop models for species transport and reactions in a variety of multiphase systems.
机译:这项工作是关于热力学约束平均理论(TCAT)方法的系列论文的第四篇,该方法用于对多尺度多孔介质系统中的流动和传输现象进行建模。通过建立宏观模型来建立质量,动量和能量的守恒关系,以及在相体积,界面和公共曲线中某种物种的熵平衡,可以建立先前的TCAT框架和数学基础。此外,实体中物种的经典不可逆热力学关系是从微观尺度到宏观尺度的平均值。最后,我们对可用于将物种和实体守恒方程与约束系统熵不等式联系起来的替代方法进行评论,这是TCAT方法的关键组成部分。这项工作中详细介绍的公式可用于开发各种多相系统中物种迁移和反应的模型。

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