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Chemically Reacting MHD Boundary Layer Flow of Heat and Mass Transfer over a Moving Vertical Plate in a Porous Medium with Suction
Author(s) -
Kotha Gangadhar,
N. Bhaskar Reddy,
M Ali,
M Ali,
M Anwar Hossain,
K Khanafer,
K Vafai,
W Banks,
P Cheng,
E Elbashbeshy,
E Elbashbeshy,
M Bazid,
L Grubka,
K Bobba,
Ibrahim,
Makinde,
S Kim,
K Vafai,
Paresh Vyas,
Ashutosh Ranjan,
Raptis,
Singh,
A Salem,
M Seddeek,
A Almushigeh,
V Soundalgekar,
T Ramana
Publication year - 2013
Publication title -
journal of applied fluid mechanics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.469
H-Index - 30
eISSN - 1735-3645
pISSN - 1735-3572
DOI - 10.36884/jafm.6.01.19502
Subject(s) - boundary layer , suction , mass transfer , mechanics , magnetohydrodynamics , materials science , flow (mathematics) , porous medium , heat transfer , layer (electronics) , porosity , thermodynamics , composite material , physics , magnetic field , quantum mechanics
A mathematical model is presented for a two-dimensional, steady, incompressible electrically conducting, laminar free convection boundary layer flow of a continuously moving vertical porous plate in a chemically reactive and porous medium in the presence of a transverse magnetic field. The basic equations governing the flow are in the form of partial differential equations and have been reduced to a set of non-linear ordinary differential equations by applying suitable similarity transformations. The problem is tackled numerically using shooting techniques with the forth order RungaKutta method. Pertinent results with respect to embedded parameters are displayed graphically for the velocity, temperature and concentration profiles and were discussed quantitatively.

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