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Thermodynamically constrained averaging theory approach for modeling flow and transport phenomena in porous medium systems: 5. Single-fluid-phase transport

机译:热力学约束平均理论方法,用于模拟多孔介质系统中的流动和传输现象:5.单流体相传输

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This work is the fifth 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 used to develop models that describe species transport and single-fluid-phase flow through a porous medium system in varying physical regimes. Classical irreversible thermodynamics formulations for species in fluids, solids, and interfaces are developed. Two different approaches are presented, one that makes use of a momentum equation for each entity along with constitutive relations for species diffusion and dispersion, and a second approach that makes use of a momentum equation for each species in an entity. The alternative models are developed by relying upon different approaches to constrain an entropy inequality using mass, momentum, and energy conservation equations. The resultant constrained entropy inequality is simplified and used to guide the development of closed models. Specific instances of dilute and non-dilute systems are examined and compared to alternative formulation approaches.
机译:这项工作是关于热力学约束平均理论(TCAT)方法的系列论文中的第五篇,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。先前工作中介绍的通用TCAT框架和数学基础用于开发模型,以描述物种在各种物理状态下通过多孔介质系统的运输和单流体相流。开发了用于流体,固体和界面中物质的经典不可逆热力学公式。提出了两种不同的方法,一种使用每个实体的动量方程以及构成物种扩散和分散的本构关系,第二种方法使用一个实体的每个物种的动量方程。替代模型是通过使用质量,动量和能量守恒方程依靠不同方法来约束熵不等式而开发的。由此产生的约束熵不等式被简化并用于指导封闭模型的开发。检查了稀释和非稀释系统的特定情况,并将其与替代配方方法进行了比较。

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