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      A modified lattice Bhatnagar-Gross-Krook model for convection heat transfer in porous media

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          Abstract

          The lattice Bhatnagar-Gross-Krook (LBGK) model has become the most popular one in the lattice Boltzmann method for simulating the convection heat transfer in porous media. However, the LBGK model generally suffers from numerical instability at low fluid viscosities and effective thermal diffusivities. In this paper, a modified LBGK model is developed for incompressible thermal flows in porous media at the representative elementary volume scale, in which the shear rate and temperature gradient are incorporated into the equilibrium distribution functions. With two additional parameters, the relaxation times in the collision process can be fixed at a proper value invariable to the viscosity and the effective thermal diffusivity. In addition, by constructing a modified equilibrium distribution function and a source term in the evolution equation of temperature field, the present model can recover the macroscopic equations correctly through the Chapman-Enskog analysis, which is another key point different from previous LBGK models. Several benchmark problems are simulated to validate the present model with the proposed local computing scheme for the shear rate and temperature gradient, and the numerical results agree well with analytical solutions and/or those well-documented data in previous studies. It is also shown that the present model and the computational schemes for the gradient operators have a second-order accuracy in space, and better numerical stability of the present modified LBGK model than previous LBGK models is demonstrated.

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          Most cited references15

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          Simulation of multicomponent fluids in complex three-dimensional geometries by the lattice Boltzmann method

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            An evaluation of lattice Boltzmann schemes for porous medium flow simulation

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              Lattice Boltzmann model for incompressible flows through porous media

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                Author and article information

                Journal
                12 May 2015
                Article
                1505.02976
                781b0f6b-c626-453f-8f87-f06b31304c72

                http://creativecommons.org/licenses/by/3.0/

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                Custom metadata
                38pages,50figures
                physics.comp-ph

                Mathematical & Computational physics
                Mathematical & Computational physics

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