Formulation and numerical analysis of nonisothermal multiphase flow in porous media
Author(s) -
Mario J. Martinez
Publication year - 1995
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/80978
Subject(s) - porous medium , state variable , numerical analysis , flow (mathematics) , multiphase flow , mechanics , statistical physics , energy balance , mixing (physics) , mathematics , thermodynamics , porosity , physics , mathematical analysis , engineering , geotechnical engineering , quantum mechanics
A mathematical formulation is presented for describing the transport of air, water and energy through porous media. The development follows a continuum mechanics approach. The theory assumes the existence of various average macroscopic variables which describe the state of the system. Balance equations for mass and energy are formulated in terms of these macroscopic variables. The system is supplemented with constitutive equations relating fluxes to the state variables, and with transport property specifications. Specification of various mixing rules and thermodynamic relations completes the system of equations. A numerical simulation scheme, employing the method of lines, is described for one-dimensional flow. The numerical method is demonstrated on sample problems involving nonisothermal flow of air and water. The implementation is verified by comparison with existing numerical solutions
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