Litcius/Paper detail

Numerical simulation of MHD heat and mass transfer past a moving rotating disk with viscous dissipation and ohmic heating

Kushal Sharma, Sanjay Kumar, Neha Vijay

2022Multidiscipline Modeling in Materials and Structures35 citationsDOI

Abstract

Purpose In this paper the effects of viscous dissipation and ohmic heating on the fluid flow and resulting heat and mass transfer caused by vertically moving rotating disk are explored with magnetic field acting perpendicular to disk rotation. The flow regime is also under the influence of Dufour and Soret effects. Design/methodology/approach An approach of similarity transformation is used to transform the governing set of equations into non-linear ordinary differential equations. Numerical simulations are carried out in Maple software to study the influence of incorporated non-dimensional parameters viz. disk movement parameter (−0.3 < S < 0.2), magnetic parameter (0.1 < M < 0.4), Eckert number (0.1 < Ec < 1), Schmidt number (0.1 < Sc < 1), Soret parameter (0.1 < Sr < 1) and Dufour number (0.1 < Du < 1) on velocity, temperature and concentration profiles. Findings The upward/downward motion of the disk along with rotation set up a three-dimensional flow over the disk surface and exerts the same effects as injection/suction through the wall. It is also observed that incorporated parameters along with disk movement greatly affect the flow regime and associated heat and mass transfer. Originality/value The present study examines the heat and mass transfer characteristics of incompressible Newtonian fluid over an impermeable rotating disk moving vertically. The effect of viscous dissipation and ohmic heating is considered. To the best of the authors’ knowledge, such consideration is yet to be published in the literature.

Topics & Concepts

MechanicsEckert numberSchmidt numberJoule heatingHeat transferMagnetohydrodynamicsMass transferPhysicsFlow (mathematics)Magnetic fieldClassical mechanicsNusselt numberPrandtl numberReynolds numberQuantum mechanicsTurbulenceNanofluid Flow and Heat TransferHeat Transfer MechanismsFluid Dynamics and Turbulent Flows