Thermodynamics-Like Formalism for Immiscible and Incompressible Two-Phase Flow in Porous Media

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Hauptverfasser: Hansen, Alex, Sinha, Santanu
Format: Preprint
Veröffentlicht: 2025
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author Hansen, Alex
Sinha, Santanu
author_facet Hansen, Alex
Sinha, Santanu
contents It is possible to formulate immiscible and incompressible two-phase flow in porous media in a mathematical framework resembling thermodynamics based on the Jaynes generalization of statistical mechanics. We review this approach and discuss the meaning of the emergent variables that appear, agiture, flow derivative and flow pressure, which are conjugate to the configurational entropy, the saturation and the porosity respectively. We conjecture that the agiture, the temperature-like variable, is directly related to the pressure gradient. This has as a consequence that the configurational entropy, a measure of how the fluids are distributed within the porous media and the accompanying velocity field, and the differential mobility of the fluids are related. We also develop elements of another version of the thermodynamics-like formalism where fractional flow rather than saturation is the control variable, since this is typically the natural control variable in experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2501_04468
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Thermodynamics-Like Formalism for Immiscible and Incompressible Two-Phase Flow in Porous Media
Hansen, Alex
Sinha, Santanu
Fluid Dynamics
It is possible to formulate immiscible and incompressible two-phase flow in porous media in a mathematical framework resembling thermodynamics based on the Jaynes generalization of statistical mechanics. We review this approach and discuss the meaning of the emergent variables that appear, agiture, flow derivative and flow pressure, which are conjugate to the configurational entropy, the saturation and the porosity respectively. We conjecture that the agiture, the temperature-like variable, is directly related to the pressure gradient. This has as a consequence that the configurational entropy, a measure of how the fluids are distributed within the porous media and the accompanying velocity field, and the differential mobility of the fluids are related. We also develop elements of another version of the thermodynamics-like formalism where fractional flow rather than saturation is the control variable, since this is typically the natural control variable in experiments.
title Thermodynamics-Like Formalism for Immiscible and Incompressible Two-Phase Flow in Porous Media
topic Fluid Dynamics
url https://arxiv.org/abs/2501.04468