Thermal radiation and mass transfer effects on MHD free convection flow past a vertical cylinder with variable surface temperature and concentration
Dublin Core
Title
Thermal radiation and mass transfer effects on MHD free convection flow past a vertical cylinder with variable surface temperature and concentration
Subject
Heat transfer
Radiation
Finite-difference Scheme
vertical cylinder
Description
The interaction of free convection with thermal radiation of a viscous incompressible unsteady MHD flow past a vertical cylinder with variable surface temperature and concentration is analyzed. The fluid is a gray, absorbing-emitting but non-scattering medium and the Rosseland approximation is used to describe the radiative heat flux in the energy equation. The governing equations are solved using an implicit finite-difference scheme of Crank-Nicolson type. Numerical results for the transient velocity, the temperature, the concentration, the local as well as average skin-friction, the rate of heat and mass transfer are shown graphically. It is observed that the presence of as well as increase in the magnetic field leads to decrease in the velocity field and rise in the thermal boundary thickness. The numerical predications have been compared with the existing information in the literature and good agreement is obtained.Keywords: Heat Transfer, radiation, finite-difference Scheme, vertical cylinderDOI: 10.3329/jname.v5i2.2615Journal of Naval Architecture and Marine Engineering 6(1)(2009) 1-24
Creator
Reddy, M. M. Gnaneswara
Reddy, N. Bhaskar
Source
Journal of Naval Architecture and Marine Engineering; Vol. 6 No. 1 (2009); 1-15
2070-8998
1813-8535
Publisher
Association of Naval Architects and Marine Engineers
Date
2010-03-27
Relation
Format
application/pdf
Language
eng
Type
info:eu-repo/semantics/article
info:eu-repo/semantics/publishedVersion
Identifier
Citation
M Reddy. M. Gnaneswara and N Reddy. Bhaskar, Thermal radiation and mass transfer effects on MHD free convection flow past a vertical cylinder with variable surface temperature and concentration, Association of Naval Architects and Marine Engineers, 2010, accessed November 15, 2024, https://igi.indrastra.com/items/show/3175