HEAT AND MASS TRANSFER SIMULATION OF MHD RADIATIVE CONVECTIVE FLOW OF NANOFLUID THROUGH AN INCLINED POROUS SURFACE
DOI:
https://doi.org/10.53808/KUS.2022.ICSTEM4IR.0116-seKeywords:
Magnetohydrodynamics, convective flow, nanofluid, porous surface.Abstract
The heat and mass transfer simulation of magnetohydrodynamics (MHD) radiative convective flow of nanofluid through an inclined porous surface are studied. The governing system of couple partial differential equations are transformed into a system of ordinary differential equations. This transformation is done by similarity transformation technique. The numerical solutions are done by sixth order Runge-Kutta method along with Nachtsheim-Swigert shooting iteration technique and then displayed graphically by using Tecplot 9.0. The physical insight of velocity, temperature and concentration have been studied for various physical parameters through numerical calculation and their respective graphs are displayed. Skin friction, rate of heat transfer and rate of mass transfer are also studied for different parameter. Finally, the results are presented in detail with the help of graphs and tables to observe the effect of different parameters like Magnetic parameter (M), radiation parameter (R), thermal Grashof number (Gr), mass Grashof number (Gc), Prandtl number (Pr), Eckert number (Ec) and chemical reaction parameter (Kr).
Downloads
References
Barik, R. N., Dash,G. C., Rath, P. K. (2018). Steady laminar MHD flow of visco-elastic fluid through a porous pipe embedded in a porous medium, Alexandria Engineering Journal, 57:973–982.
Falade, J. A., Ukaegbu, J. C., Egere, A. C., Adesanya, S.O. (2017). MHD oscillatory flow through a porous channel saturated with porous medium, Alexandria Engineering Journal, 56:147–152.
Gopal, D., Saleem, S., Jagadha, S., Ahmad, F., Almatroud, A. O., Kishan, A. (2020). Numerical analysis of higher order chemical reaction on electrically MHD nanofluid under influence of viscous dissipation, Alexandria Engineering Journal, 30:30.
Hayat, T., Rashid, M., Imtiaz, M., Alsaedi, A. (2015). Magnetohydrodynamic (MHD) stretched flow of nanofluid with power-law Velocity and chemical reaction, AIP Advances, 5:117121.
Ishak, A., Nazar, R., Pop, I. (2009). Heat transfer over an unsteady stretching permeable surface with prescribed wall temperature. Nonlinear Analysis: Real World Applications, 10: 2909-2913.
Mjankwi, M. A., Masanja, V. G., Mureithi, E. W., James, M. N. (2019). Unsteady MHD Flow of Nanofluid with Variable Properties over a Stretching Sheet in the Presence of Thermal Radiation and Chemical Reaction, International Journal of Mathematics and Mathematical Sciences, 2019:1-14.
Qureshi,M. Z. A., Rubbab,Q., Irshad,S., Ahmad,S., Aqeel,M. (2016). Heat and MassbTransfer Analysis of MHD Nanofluid Flow with Radiative Heat Effects in the Presence of Spherical Au-Metallic Nanoparticles, Nanoscale Research Letters, 11:472.
Rajput, U. S., Kanaujia, N. (2016). Combined effect of Hall current and chemical reaction on MHD flow through Porous medium with heat generation past an impulsively started vertical plate with constant wall temperature and mass diffusion, Journal of Computational and Applied Research in Mechanical Engineering, 9(1):117-128.
Raju, K. V. S., Reddy,T. S., Raju, M. C., Narayana, P. V. S., Venkataramana, S. (2014). MHD convective flow through porous medium in a horizontal channel with insulated and impermeable bottom wall in the presence of viscous dissipation and Joule heating, Ain Shams Engineering Journal, 5:543–551.
Raman Reddy, G.V., Ramana Murthy, Ch.V., Bhaskar Reddy, N. (2010). Mass transfer and radiation effects of unsteady MHD free convective fluid embedded in porous medium with heat generation/absorption. Indian Journal of Pure and Applied Physics, 48: 157-165.
Singh, K. D., Mathew, A. (2012). Free Convective Flow Through Porous Medium in a Rotating Vertical Porous Channel, Global Journal of Science Frontier Research Mathematics & Decision Sciences, 12(3): 51-64.
Srinivas, S., Vijayalakshmi, A., Reddy, A. S., Ramamohan, T.R (2016). MHD flow of a nanofluid in an expanding or contracting porous pipe with chemical reaction and heat source/ sink, Propulsion and Power Research, 5(2):134–148.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 Khulna University Studies
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.