Title of article
Thermodynamically constrained averaging theory approach for modeling flow and transport phenomena in porous medium systems: 3. Single-fluid-phase flow
Author/Authors
William G. Gray and others، نويسنده , , Li-Shi Luo and Cass T. Miller، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2006
Pages
21
From page
1745
To page
1765
Abstract
This work is the third in a series of papers on the thermodynamically constrained averaging theory (TCAT) approach to modeling flow and transport phenomena in multiscale porous medium systems. Building upon the general TCAT framework and the mathematical foundation presented in previous works in this series, we demonstrate the TCAT approach for the case of single-fluid-phase flow. The formulated model is based upon conservation equations for mass, momentum, and energy and a general entropy inequality constraint, which is developed to guide model closure. A specific example of a closed model is derived under limiting assumptions using a linearization approach and these results are compared and contrasted with the traditional single-phase-flow model. Potential extensions to this work are discussed. Specific advancements in this work beyond previous averaging theory approaches to single-phase flow include use of macroscale thermodynamics that is averaged from the microscale, the use of derived equilibrium conditions to guide a flux–force pair approach to simplification, use of a general Lagrange multiplier approach to connect conservation equation constraints to the entropy inequality, and a focus on producing complete, closed models that are solvable.
Keywords
TCAT , Single-phase flow , Porous medium models , averaging theory
Journal title
Advances in Water Resources
Serial Year
2006
Journal title
Advances in Water Resources
Record number
1271200
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