Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study

This paper deals with heat and mass transfer in an electrically conducting nanofluid flow over a heated stretching sheet. The behavior of heat generation/absorption, thermophoresis, and chemical reaction are also taken into account. To model the equations of momentum, thermal energy, and nanoparticl...

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Main Authors: B.C. Rout, S.R. Mishra
Format: Article
Language:English
Published: Elsevier 2018-02-01
Series:Engineering Science and Technology, an International Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2215098617316634
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author B.C. Rout
S.R. Mishra
author_facet B.C. Rout
S.R. Mishra
author_sort B.C. Rout
collection DOAJ
description This paper deals with heat and mass transfer in an electrically conducting nanofluid flow over a heated stretching sheet. The behavior of heat generation/absorption, thermophoresis, and chemical reaction are also taken into account. To model the equations of momentum, thermal energy, and nanoparticle concentration, suitable similarity transformation variable is utilized. These transformed ordinary differential equations are solved numerically using fourth-fifth order Runge-Kutta methods. The physical significance of all the parameters is discussed and demonstrated via graphs. Furthermore, the skin friction coefficient, Nusselt number, and Sherwood number are also displayed via graphs. It is evident that due to higher values of radiation, the surface heat flux becomes higher so, the temperature of the nanofluid increases in the thermal boundary layer and increase in thermophoretic number and the Brownian parameter, the Nusselt number increases, however, Sherwood number decreases.
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spelling doaj.art-56d68ae57aa34806aa378a58461d13692022-12-21T22:38:59ZengElsevierEngineering Science and Technology, an International Journal2215-09862018-02-01211606910.1016/j.jestch.2018.02.007Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative studyB.C. RoutS.R. MishraThis paper deals with heat and mass transfer in an electrically conducting nanofluid flow over a heated stretching sheet. The behavior of heat generation/absorption, thermophoresis, and chemical reaction are also taken into account. To model the equations of momentum, thermal energy, and nanoparticle concentration, suitable similarity transformation variable is utilized. These transformed ordinary differential equations are solved numerically using fourth-fifth order Runge-Kutta methods. The physical significance of all the parameters is discussed and demonstrated via graphs. Furthermore, the skin friction coefficient, Nusselt number, and Sherwood number are also displayed via graphs. It is evident that due to higher values of radiation, the surface heat flux becomes higher so, the temperature of the nanofluid increases in the thermal boundary layer and increase in thermophoretic number and the Brownian parameter, the Nusselt number increases, however, Sherwood number decreases.http://www.sciencedirect.com/science/article/pii/S2215098617316634NanofluidStretching sheetMHDHeat source/sinkChemical reactionRunge-Kutta method
spellingShingle B.C. Rout
S.R. Mishra
Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study
Engineering Science and Technology, an International Journal
Nanofluid
Stretching sheet
MHD
Heat source/sink
Chemical reaction
Runge-Kutta method
title Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study
title_full Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study
title_fullStr Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study
title_full_unstemmed Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study
title_short Thermal energy transport on MHD nanofluid flow over a stretching surface: A comparative study
title_sort thermal energy transport on mhd nanofluid flow over a stretching surface a comparative study
topic Nanofluid
Stretching sheet
MHD
Heat source/sink
Chemical reaction
Runge-Kutta method
url http://www.sciencedirect.com/science/article/pii/S2215098617316634
work_keys_str_mv AT bcrout thermalenergytransportonmhdnanofluidflowoverastretchingsurfaceacomparativestudy
AT srmishra thermalenergytransportonmhdnanofluidflowoverastretchingsurfaceacomparativestudy