Published November 15, 2016 | Version v1
Journal article

Energy conversion under conjugate conduction, magneto-convection, diffusion and nonlinear radiation over a non-linearly stretching sheet with slip and multiple convective boundary conditions

  • 1. American International University-Bangladesh, Banani, Dhaka, 1213 (Bangladesh)
  • 2. Spray Research Group, Petroleum and Gas Engineering Division, School of Computing Science and Engineering, University of Salford, Manchester, M54WT, England (United Kingdom)
  • 3. Department of Mathematical Sciences, Ball State University, 2000 W University Avenue, Muncie, IN 47306 (United States)

Description

Energy conversion under conduction, convection, diffusion and radiation has been studied for MHD free convection heat transfer of a steady laminar boundary-layer flow past a moving permeable non-linearly extrusion stretching sheet. The nonlinear Rosseland thermal radiation flux model, velocity slip, thermal and mass convective boundary conditions are considered to obtain a model with fundamental applications to real world energy systems. The Navier slip, thermal and mass convective boundary conditions are taken into account. Similarity differential equations with corresponding boundary conditions for the flow problem, are derived, using a scaling group of transformation. The transformed model is shown to be controlled by magnetic field, conduction-convection, convection-diffusion, suction/injection, radiation-conduction, temperature ratio, Prandtl number, Lewis number, buoyancy ratio and velocity slip parameters. The transformed non-dimensional boundary value problem comprises a system of nonlinear ordinary differential equations and physically realistic boundary conditions, and is solved numerically using the efficient Runge-Kutta-Fehlberg fourth fifth order numerical method, available in Maple 17 symbolic software. Validation of results is achieved with previous simulations available in the published literature. The obtained results are displayed both in graphical and tabular form to exhibit the effect of the controlling parameters on the dimensionless velocity, temperature and concentration distributions. The current study has applications in high temperature materials processing utilizing magnetohydrodynamics, improved performance of MHD energy generator wall flows and also magnetic-microscale fluid devices. - Highlights: • Energy conversion for conduction, magneto-convection and radiation is achieved. • Radiation, velocity slip, thermal and mass convective boundary conditions are used. • Transformed equations are solved using Runge-Kutta-Fehlberg method. • The obtained results are displayed both in graphical and tabular form. • Model has applications in materials processing, magnetic-microscale fluid devices.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.energy.2016.05.063

Additional details

Identifiers

DOI
10.1016/j.energy.2016.05.063;
PII
S0360-5442(16)30680-6;

Publishing Information

Journal Title
Energy (Oxford)
Journal Volume
115
Journal Issue
Part 1
Journal Page Range
p. 1119-1129
ISSN
0360-5442
CODEN
ENEYDS

Optional Information

Copyright
Copyright (c) 2016 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.