Thermal radiation effect on unsteady three-dimensional MHD flow of micropolar fluid over a horizontal surface of a parabola of revolution-Propulsion and Power Research
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Thermal radiation effect on unsteady three-dimensional MHD flow of micropolar fluid over a horizontal surface of a parabola of revolution

Author:S.R.R. Reddy, P. Bala Anki Reddy [Date]:2022-04-11 [Source]:292 [Click]:

Thermal radiation effect on unsteady three-dimensional MHD flow of micropolar fluid over a horizontal surface of a parabola of revolution

S.R.R. Reddy a, P. Bala Anki Reddy b,*

a. Center for Nonlinear Systems, Chennai Institute of Technology, Chennai-600069, T.N., India
         b. Department of Mathematics, S.A.S., Vellore Institute of Technology, Vellore-632014, T.N., India

Abstract: This paper explores the time-dependent magnetohydrodynamics (MHD) micropolar fluid flow over a three-dimensional variable stretching surface in the occurrence of radiation effect. The model time-dependent partial differential equations (PDE's) in three independent variables are transformed into ordinary differential equations (ODE's) by the suitable self-similarity variables. Homotopy perturbation method (HPM) and Runge-Kutta (RK) 4th order method along with shooting technique are used in the present model. And also, HPM results are compared with Runge-Kutta (RK) 4th order method along with the shooting technique. The velocity, micro rotation in x and y directions, temperature, skin friction factor and heat transfer rates are examined for the emerging parameters. The velocity profiles and momentum boundary layer thickness intensification with increasing values of the vortex viscosity parameter. The higher value of a magnetic parameter declines the skin friction coefficient. This type of investigation may be profitable to the polymer fluids, exotic lubricants, electronic chips, artificial fibers, drawing of copper wires, etc.

Keywords: Radiation parameter; Magnetohydrodynamics; Micropolar fluid; Variable thickness sheet; Homotopy perturbation method (HPM)

https://doi.org/10.1016/j.jppr.2022.01.001