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Research Article Open access CC BY 4.0

Chemical Reaction and Radiative MHD Heat and Mass Transfer Flow with Temperature Dependent Viscosity Past an Isothermal Oscillating Cylinder

R. Ahmed, B. M. Jewel Rana, R. Uddin, M. M. Islam, S. F. Ahmmed

Physical Science International Journal · pp. 1–9 · Published 29 Sep 2016

10.9734/PSIJ/2016/28008

Abstract

The numerical analysis is performed to examine the effects of magnetic, radiation and chemical reaction parameters on the unsteady heat and mass transfer flow past a temperature dependent viscosity of an isothermal oscillating cylinder. The governing coupled dimensional partial differential equations have been transformed into dimensionless equations by using non-dimensionless variables. The transformed momentum, energy and concentration equations are solved numerically by using explicit finite difference method. A Compaq visual Fortran 6.6a has been used to calculate the numerical solutions of this present problem. The velocity, temperature, concentration field, skin-friction, rate of heat transfer, streamlines and isotherms lines for different well-known parameters entering into the problem separately are discussed with the help of graphs.  

Chemical reaction magnetic radiation oscillating cylinder explicit finite difference

Cited by 3

Chemically reacting viscous fluid flow on a permeable cylinder susceptible to oscillations

D. M, L. P., V. K · International Communications in Heat and Mass Transfer · 2021

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