Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions

In this study, the numerical investigation of stagnation point flow over a stretching surface with Newtonian heating and convective boundary conditions are considered. The transformed boundary layer equations are solved numerically using the Keller-box method. Numerical solutions are obtained for th...

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Main Authors: Muhammad Khairul Anuar, Mohamed, Mohd Zuki, Salleh, Roslinda, Nazar, Anuar, Ishak
Format: Conference or Workshop Item
Language:English
Published: 2012
Subjects:
Online Access:http://umpir.ump.edu.my/id/eprint/3507/1/Full_paper_SKSM20.pdf
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author Muhammad Khairul Anuar, Mohamed
Mohd Zuki, Salleh
Roslinda, Nazar
Anuar, Ishak
author_facet Muhammad Khairul Anuar, Mohamed
Mohd Zuki, Salleh
Roslinda, Nazar
Anuar, Ishak
author_sort Muhammad Khairul Anuar, Mohamed
collection UMP
description In this study, the numerical investigation of stagnation point flow over a stretching surface with Newtonian heating and convective boundary conditions are considered. The transformed boundary layer equations are solved numerically using the Keller-box method. Numerical solutions are obtained for the local heat transfer coefficient, the surface temperature as well as the temperature profiles. The features of the flow and heat transfer characteristics for various values of the Prandtl number, stretching parameter and conjugate parameter are analyzed and discussed. As a conclusion, the thermal boundary layer thickness depends strongly on these three parameters. It is found that, as Prandtl number and stretching parameter increase, the temperature profiles decrease. While, as conjugate parameter decrease, the temperature profiles also decrease.
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spelling UMPir35072018-01-09T02:40:35Z http://umpir.ump.edu.my/id/eprint/3507/ Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions Muhammad Khairul Anuar, Mohamed Mohd Zuki, Salleh Roslinda, Nazar Anuar, Ishak QA Mathematics In this study, the numerical investigation of stagnation point flow over a stretching surface with Newtonian heating and convective boundary conditions are considered. The transformed boundary layer equations are solved numerically using the Keller-box method. Numerical solutions are obtained for the local heat transfer coefficient, the surface temperature as well as the temperature profiles. The features of the flow and heat transfer characteristics for various values of the Prandtl number, stretching parameter and conjugate parameter are analyzed and discussed. As a conclusion, the thermal boundary layer thickness depends strongly on these three parameters. It is found that, as Prandtl number and stretching parameter increase, the temperature profiles decrease. While, as conjugate parameter decrease, the temperature profiles also decrease. 2012 Conference or Workshop Item PeerReviewed application/pdf en http://umpir.ump.edu.my/id/eprint/3507/1/Full_paper_SKSM20.pdf Muhammad Khairul Anuar, Mohamed and Mohd Zuki, Salleh and Roslinda, Nazar and Anuar, Ishak (2012) Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions. In: Simposium Kebangsaan Sains Matematik ke-20 , 18-20 Dec 2012 , Putrajaya. . (Submitted) (Submitted)
spellingShingle QA Mathematics
Muhammad Khairul Anuar, Mohamed
Mohd Zuki, Salleh
Roslinda, Nazar
Anuar, Ishak
Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions
title Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions
title_full Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions
title_fullStr Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions
title_full_unstemmed Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions
title_short Stagnation Point Flow over a Stretching Sheet with Convective Boundary Conditions
title_sort stagnation point flow over a stretching sheet with convective boundary conditions
topic QA Mathematics
url http://umpir.ump.edu.my/id/eprint/3507/1/Full_paper_SKSM20.pdf
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