Two-Phase Microscopic Heat Transfer Model for Three-Dimensional Stagnation Boundary-Layer Flow in a Porous Medium

Author:

Kudenatti Ramesh B.1,Gogate S. Shashi Prabha2

Affiliation:

1. Department of Mathematics, Bangalore University, Central College Campus, Bangalore 560 001, India

2. Department of Mathematics, M.S.Ramaiah Institute of Technology, Bangalore 560 054, India

Abstract

Abstract This work examines the steady three-dimensional forced convective thermal boundary-layer flow of laminar and incompressible fluid in a porous medium. In this analysis, it is assumed that the solid phase and the fluid phase, which is immersed in a porous medium are subjected to local thermal nonequilibrium (LTNE) conditions, which essentially leads to one thermal boundary-layer equation for each phase. Suitable similarity transformations are introduced to reduce the boundary-layer equations into system of nonlinear ordinary differential equations, which are analyzed numerically using an implicit finite difference-based Keller-box method. The numerical results are further confirmed by the asymptotic solution of the same system for large three-dimensionality parameter, and the corresponding results agree well. Our results show that the thickness of boundary layer is always thinner for all permeability parameters tested when compared to the nonporous case. Also, it is noticed that the temperature of solid phase is found to be higher than the corresponding fluid phase for any set of parameters. There is a visible temperature difference in the two phases when the microscopic interphase rate is quite large. The physical hydrodynamics to these parameters is studied in some detail.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference31 articles.

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2. Combined Free and Forced Convection in Porous Medium;Soc. Pet. Eng. J.,1971

3. Unsteady Mixed Convection Boundary-Layer Flow Near the Stagnation Point on a Vertical Surface in a Porous Medium;Int. J. Heat Mass Transfer,2004

4. Vertical Free Convective Boundary-Layer Flow in a Porous Medium Using a Thermal Non-Equilibrium Model;J. Porous Media,2000

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