Geomaterials such as vuggy carbonates are known to exhibit multiple spatial scales. A common manifestation of spatial scales is the presence of (at least) two different scales of pores with different hydromechanical properties. Moreover, these pore-networks are connected through fissures and conduits. Although some models are available in the literature to describe flows in such media, they lack a strong theoretical basis. This paper aims to fill this gap in knowledge by providing the theoretical foundation for the flow of incompressible single-phase fluids in rigid porous media that exhibit double porosity/permeability. We first obtain a mathematical model by combining the theory of interacting continua and the maximization of rate of dissipation (MRD) hypothesis, and thereby provide a firm thermodynamic underpinning. The governing equations of the model are a system of elliptic partial differential equations (PDEs) under a steady-state response and a system of parabolic PDEs under a transient response. We then present, along with mathematical proofs, several important mathematical properties that the solutions to the model satisfy. We also present several canonical problems with analytical solutions which are used to gain insights into the velocity and pressure profiles, and the mass transfer across the two pore-networks. In particular, we highlight how the solutions under the double porosity/permeability differ from the corresponding ones under Darcy equations.
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August 2018
Research-Article
Modeling Flow in Porous Media With Double Porosity/Permeability: Mathematical Model, Properties, and Analytical Solutions
Kalyana B. Nakshatrala,
Kalyana B. Nakshatrala
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: knakshatrala@uh.edu
Engineering,
University of Houston,
Houston, TX 77204
e-mail: knakshatrala@uh.edu
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Seyedeh Hanie S. Joodat,
Seyedeh Hanie S. Joodat
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: sseyedjoodat@uh.edu
Engineering,
University of Houston,
Houston, TX 77204
e-mail: sseyedjoodat@uh.edu
Search for other works by this author on:
Roberto Ballarini
Roberto Ballarini
Thomas and Laura Hsu Professor and Chair,
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: rballarini@uh.edu
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: rballarini@uh.edu
Search for other works by this author on:
Kalyana B. Nakshatrala
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: knakshatrala@uh.edu
Engineering,
University of Houston,
Houston, TX 77204
e-mail: knakshatrala@uh.edu
Seyedeh Hanie S. Joodat
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: sseyedjoodat@uh.edu
Engineering,
University of Houston,
Houston, TX 77204
e-mail: sseyedjoodat@uh.edu
Roberto Ballarini
Thomas and Laura Hsu Professor and Chair,
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: rballarini@uh.edu
Department of Civil and Environmental
Engineering,
University of Houston,
Houston, TX 77204
e-mail: rballarini@uh.edu
1Corresponding author.
Manuscript received February 14, 2018; final manuscript received April 24, 2018; published online June 4, 2018. Assoc. Editor: N.R. Aluru.
J. Appl. Mech. Aug 2018, 85(8): 081009 (17 pages)
Published Online: June 4, 2018
Article history
Received:
February 14, 2018
Revised:
April 24, 2018
Citation
Nakshatrala, K. B., Joodat, S. H. S., and Ballarini, R. (June 4, 2018). "Modeling Flow in Porous Media With Double Porosity/Permeability: Mathematical Model, Properties, and Analytical Solutions." ASME. J. Appl. Mech. August 2018; 85(8): 081009. https://doi.org/10.1115/1.4040116
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