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Numerical prediction of heat transfer by natural convection and radiation in an enclosure filled with an isotropic scattering medium
Authors:F Moufekkir  MA Moussaoui  A Mezrhab  H Naji  D Lemonnier
Institution:1. Laboratoire de Mécanique & Energétique, Faculté des sciences, Département de Physique 60000 Oujda, Maroc;2. Laboratoire Génie Civil & géo-Environnement (LGCgE-EA 4515), UArtois/FSA Béthune, F-62400 Béthune, France;3. Université Lille Nord de France, F-59000 Lille, France;4. Institut Pprime, CNRS-ENSMA-Univ. Poitiers, ENSMA, B.P. 40109, 86961 Futuroscope, Chasseneuil cedex, France
Abstract:This paper deals with the numerical solution for natural convection and volumetric radiation in an isotropic scattering medium within a heated square cavity using a hybrid thermal lattice Boltzmann method (HTLBM). The multiple relaxation time lattice Boltzmann method (MRT-LBM) has been coupled to the finite difference method (FDM) to solve momentum and energy equations, while the discrete ordinates method (DOM) has been adopted to solve the radiative transfer equation (RTE) using the S8 quadrature. Based on these approaches, the effects of various influencing parameters such as the Rayleigh number (Ra), the wall emissivity (ει), the Planck number (Pl), and the scattering albedo (ω), have been considered. The results presented in terms of isotherms, streamlines and averaged Nusselt number, show that in absence of radiation, the temperature and the flow fields are centro-symmetrics and the cavity core is thermally stratified. However, radiation causes an overall increase in the temperature and velocity gradients along both thermally active walls. The maximum heat transfer rate is obtained when the surfaces of the enclosure walls are regarded as blackbodies. It is also seen that the scattering medium can generate a multicellular flow.
Keywords:
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