Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking Sheet with Constant Heat Flux
The steady stagnation point flow and heat transfer towards an exponentially stretching/shrinking sheet with constant heat flux is investigated in this paper. The transformed governing nonlinear boundary layer equations are solved numerically by using Runge-Kutta-Fehlberg method. Numerical solutions...
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ump-77992018-01-08T06:19:55Z http://umpir.ump.edu.my/id/eprint/7799/ Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking Sheet with Constant Heat Flux Alavi, Sayed Qasim Norhayati, Rosli Mohd Zuki, Salleh QA Mathematics The steady stagnation point flow and heat transfer towards an exponentially stretching/shrinking sheet with constant heat flux is investigated in this paper. The transformed governing nonlinear boundary layer equations are solved numerically by using Runge-Kutta-Fehlberg method. Numerical solutions are obtained for the local wall temperature, local skin-friction coefficient as well as velocity and temperature profiles. The features of the flow and heat transfer characteristics for different values of the stretching/shrinking parameter and the Prandtl number are analyzed and discussed. 2015 Conference or Workshop Item PeerReviewed application/pdf en http://umpir.ump.edu.my/id/eprint/7799/1/fist-2014-sayed-Numerical_Solutions.pdf Alavi, Sayed Qasim and Norhayati, Rosli and Mohd Zuki, Salleh (2015) Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking Sheet with Constant Heat Flux. In: AIP Conference Proceeding, 541, 1643 :The 2nd ISM International Statistical Conference (ISM-II 2014), 12-14 August 2014 , MS Garden Hotel, Kuantan. p. 541.. http://dx.doi.org/10.1063/1.4907492 |
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QA Mathematics Alavi, Sayed Qasim Norhayati, Rosli Mohd Zuki, Salleh Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking Sheet with Constant Heat Flux |
description |
The steady stagnation point flow and heat transfer towards an exponentially stretching/shrinking sheet with constant heat flux is investigated in this paper. The transformed governing nonlinear boundary layer equations are solved numerically by using Runge-Kutta-Fehlberg method. Numerical solutions are obtained for the local wall temperature, local skin-friction coefficient as well as velocity and temperature profiles. The features of the flow and heat transfer characteristics for different values of the stretching/shrinking parameter and the Prandtl number are analyzed and discussed. |
format |
Conference or Workshop Item |
author |
Alavi, Sayed Qasim Norhayati, Rosli Mohd Zuki, Salleh |
author_facet |
Alavi, Sayed Qasim Norhayati, Rosli Mohd Zuki, Salleh |
author_sort |
Alavi, Sayed Qasim |
title |
Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking
Sheet with Constant Heat Flux |
title_short |
Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking
Sheet with Constant Heat Flux |
title_full |
Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking
Sheet with Constant Heat Flux |
title_fullStr |
Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking
Sheet with Constant Heat Flux |
title_full_unstemmed |
Numerical Solutions of the Stagnation-Point Flow and Heat Transfer Towards An Exponentially Stretching/ Shrinking
Sheet with Constant Heat Flux |
title_sort |
numerical solutions of the stagnation-point flow and heat transfer towards an exponentially stretching/ shrinking
sheet with constant heat flux |
publishDate |
2015 |
url |
http://umpir.ump.edu.my/id/eprint/7799/ http://umpir.ump.edu.my/id/eprint/7799/ http://umpir.ump.edu.my/id/eprint/7799/1/fist-2014-sayed-Numerical_Solutions.pdf |
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2023-09-18T22:04:48Z |
last_indexed |
2023-09-18T22:04:48Z |
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