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Please use this identifier to cite or link to this item: http://hdl.handle.net/11154/1603

Title: Asymptotic and numerical transient analysis of the free convection cooling of a vertical plate embedded in a porous medium
Authors: Mendez, F
Luna, E
Pop, I
Treviño, C
Issue Date: 2004
Abstract: This paper analyzes the cooling process of a vertical thin plate originated by a fluid-saturated porous medium, taking into account the effects of both longitudinal and transversal heat conduction in the plate. Due to the finite thermal conductivity of the plate, a longitudinal temperature gradient arises within it, which prevents any similarity solution in the boundary layer, changing the mathematical character of the problem from parabolic to elliptic, for large values of the suitable Rayleigh number. The energy balance equations are reduced to a system of two differential equations with two parameters: the nondimensional plate thermal conductivity alpha and the aspect ratio of the plate epsilon. In order to obtain the evolution of the temperature of the plate as a function of time and position, the coupled balance equations are integrated numerically for several values of the parameters, including the cases of very good and poor conducting plates. The results obtained, are compared with an asymptotic analysis based on the multiple scales technique carried out for the case of a very good conducting plate. There is at the beginning a fast transient in nondimensional time scale of order alpha followed by a slow nondimensional time scale of order unity, which gives the evolution of the cooling process. Good agreement is achieved even for values of the conduction parameter alpha of order unity. The asymptotic solution allows us to give closed form analytical solution for the plate temperature evolution in time and space. The overall thermal energy of the plate decreases faster for smaller values of alpha.
URI: http://hdl.handle.net/11154/1603
ISSN: 0947-7411
Appears in Collections:Física

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