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 ...
As a tool for addressing problems of scale, we consider an evolving approach known as the thermodyna...
We construct a statistical mechanics for immiscible and incompressible two-phase flow in porous medi...
Abstract Problems involving flow in porous media are ubiquitous in many natural and engineered syste...
This work is the fifth in a series of papers on the thermodynamically constrained averaging theory (...
This work is the fourth in a series of papers on the thermodynamically constrained averaging theory ...
Abstract This work is the third in a series of papers on the thermodynamically constrained averaging...
This work is the seventh in a series that introduces and employs the thermodynamically constrained a...
Traditional approaches to multiscale modeling of multiphase flow and transport are riddled with defi...
This work is the eighth in a series that develops the fundamental aspects of the thermodynamically c...
Non-dilute flow and transport in porous media plays an important role in many natural and engineered...
The thermodynamically constrained averaging theory (TCAT) approach was used to derive a general mode...
The thermodynamically constrained averaging theory (TCAT) is a comprehensive theory used to formulat...
1] Although averaging procedures to derive larger-scale conservation equations from their microscopi...
A thermodynamic description of porous media must handle the size- and shape-dependence of media prop...
We define a representative elementary volume of a porous medium in terms of lumped extensive variabl...
As a tool for addressing problems of scale, we consider an evolving approach known as the thermodyna...
We construct a statistical mechanics for immiscible and incompressible two-phase flow in porous medi...
Abstract Problems involving flow in porous media are ubiquitous in many natural and engineered syste...
This work is the fifth in a series of papers on the thermodynamically constrained averaging theory (...
This work is the fourth in a series of papers on the thermodynamically constrained averaging theory ...
Abstract This work is the third in a series of papers on the thermodynamically constrained averaging...
This work is the seventh in a series that introduces and employs the thermodynamically constrained a...
Traditional approaches to multiscale modeling of multiphase flow and transport are riddled with defi...
This work is the eighth in a series that develops the fundamental aspects of the thermodynamically c...
Non-dilute flow and transport in porous media plays an important role in many natural and engineered...
The thermodynamically constrained averaging theory (TCAT) approach was used to derive a general mode...
The thermodynamically constrained averaging theory (TCAT) is a comprehensive theory used to formulat...
1] Although averaging procedures to derive larger-scale conservation equations from their microscopi...
A thermodynamic description of porous media must handle the size- and shape-dependence of media prop...
We define a representative elementary volume of a porous medium in terms of lumped extensive variabl...
As a tool for addressing problems of scale, we consider an evolving approach known as the thermodyna...
We construct a statistical mechanics for immiscible and incompressible two-phase flow in porous medi...
Abstract Problems involving flow in porous media are ubiquitous in many natural and engineered syste...