On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface

This paper investigates the behavior of MHD stagnation point flow of Carreau fluid in the presence of infinite shear rate viscosity. Additionally heat transfer analysis in the existence of non-linear radiation with convective boundary condition is performed. Moreover effects of Joule heating is obse...

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Main Authors: Masood Khan, Humara Sardar, M. Mudassar Gulzar
Format: Article
Language:English
Published: Elsevier 2018-03-01
Series:Results in Physics
Online Access:http://www.sciencedirect.com/science/article/pii/S2211379717320612
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spelling doaj-8882f39b54c548198e4bf82db87c33882020-11-25T00:13:31ZengElsevierResults in Physics2211-37972018-03-018524531On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surfaceMasood Khan0Humara Sardar1M. Mudassar Gulzar2Department of Mathematics, Quaid-i-Azam University, Islamabad 44000, PakistanDepartment of Mathematics, Quaid-i-Azam University, Islamabad 44000, Pakistan; Corresponding author.Department of Basic Sciences and Humanities, College of Electrical and Mechanical Engineering, National University of Sciences and Technology, Islamabad 44000, PakistanThis paper investigates the behavior of MHD stagnation point flow of Carreau fluid in the presence of infinite shear rate viscosity. Additionally heat transfer analysis in the existence of non-linear radiation with convective boundary condition is performed. Moreover effects of Joule heating is observed and mathematical analysis is presented in the presence of viscous dissipation. The suitable transformations are employed to alter the leading partial differential equations to a set of ordinary differential equations. The subsequent non-straight common ordinary differential equations are solved numerically by an effective numerical approach specifically Runge-Kutta Fehlberg method alongside shooting technique. It is found that the higher values of Hartmann number M correspond to thickening of the thermal and thinning of momentum boundary layer thickness. The analysis further reveals that the fluid velocity is diminished by increasing the viscosity ratio parameter (β∗) and opposite trend is observed for temperature profile for both hydrodynamic and hydromagnetic flows. In addition the momentum boundary layer thickness is increased with velocity ratio parameter α and opposite is true for thermal boundary layer thickness. Keywords: Magnetohydrodynamic flow, Carreau viscosity model, Stagnation point flow, Heat transfer analysis, Non-linear radiation, Joule heating, Numerical computationshttp://www.sciencedirect.com/science/article/pii/S2211379717320612
collection DOAJ
language English
format Article
sources DOAJ
author Masood Khan
Humara Sardar
M. Mudassar Gulzar
spellingShingle Masood Khan
Humara Sardar
M. Mudassar Gulzar
On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface
Results in Physics
author_facet Masood Khan
Humara Sardar
M. Mudassar Gulzar
author_sort Masood Khan
title On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface
title_short On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface
title_full On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface
title_fullStr On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface
title_full_unstemmed On radiative heat transfer in stagnation point flow of MHD Carreau fluid over a stretched surface
title_sort on radiative heat transfer in stagnation point flow of mhd carreau fluid over a stretched surface
publisher Elsevier
series Results in Physics
issn 2211-3797
publishDate 2018-03-01
description This paper investigates the behavior of MHD stagnation point flow of Carreau fluid in the presence of infinite shear rate viscosity. Additionally heat transfer analysis in the existence of non-linear radiation with convective boundary condition is performed. Moreover effects of Joule heating is observed and mathematical analysis is presented in the presence of viscous dissipation. The suitable transformations are employed to alter the leading partial differential equations to a set of ordinary differential equations. The subsequent non-straight common ordinary differential equations are solved numerically by an effective numerical approach specifically Runge-Kutta Fehlberg method alongside shooting technique. It is found that the higher values of Hartmann number M correspond to thickening of the thermal and thinning of momentum boundary layer thickness. The analysis further reveals that the fluid velocity is diminished by increasing the viscosity ratio parameter (β∗) and opposite trend is observed for temperature profile for both hydrodynamic and hydromagnetic flows. In addition the momentum boundary layer thickness is increased with velocity ratio parameter α and opposite is true for thermal boundary layer thickness. Keywords: Magnetohydrodynamic flow, Carreau viscosity model, Stagnation point flow, Heat transfer analysis, Non-linear radiation, Joule heating, Numerical computations
url http://www.sciencedirect.com/science/article/pii/S2211379717320612
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