Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet

A stagnation-point flow of a Powell-Eyring nanofluid along a vertical stretching surface is examined. The buoyancy force effect due to mixed convection is taken into consideration along with the Brownian motion and thermophoresis effect. The flow is investigated under active and passive controls of...

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Main Authors: Halim, Nadhirah Abdul, Mohd Noor, Noor Fadiya
Format: Article
Published: MDPI 2021
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Online Access:http://eprints.um.edu.my/27580/
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spelling my.um.eprints.275802022-06-09T07:57:00Z http://eprints.um.edu.my/27580/ Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet Halim, Nadhirah Abdul Mohd Noor, Noor Fadiya QA Mathematics A stagnation-point flow of a Powell-Eyring nanofluid along a vertical stretching surface is examined. The buoyancy force effect due to mixed convection is taken into consideration along with the Brownian motion and thermophoresis effect. The flow is investigated under active and passive controls of nanoparticles at the surface. The associating partial differential equations are converted into a set of nonlinear, ordinary differential equations using similarity conversions. Then, the equations are reduced to first-order differential equations before further being solved using the shooting method and bvp4c function in MATLAB. All results are presented in graphical and tabular forms. The buoyancy parameter causes the skin friction coefficient to increase in opposing flows but to decrease in assisting flows. In the absence of buoyancy force, there is no difference in the magnitude of the skin friction coefficient between active and passive controls of the nanoparticles. Stagnation has a bigger influence under passive control in enhancing the heat transfer rate as compared to when the fluid is under active control. Assisting flows have better heat and mass transfer rates with a lower magnitude of skin friction coefficient as compared to opposing flows. In this case, the nanofluid parameters, the Brownian motion, and thermophoresis altogether reduce the overall heat transfer rates of the non-Newtonian nanofluid. MDPI 2021-02 Article PeerReviewed Halim, Nadhirah Abdul and Mohd Noor, Noor Fadiya (2021) Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet. Mathematics, 9 (4). ISSN 2227-7390, DOI https://doi.org/10.3390/math9040364 <https://doi.org/10.3390/math9040364>. 10.3390/math9040364
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QA Mathematics
spellingShingle QA Mathematics
Halim, Nadhirah Abdul
Mohd Noor, Noor Fadiya
Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet
description A stagnation-point flow of a Powell-Eyring nanofluid along a vertical stretching surface is examined. The buoyancy force effect due to mixed convection is taken into consideration along with the Brownian motion and thermophoresis effect. The flow is investigated under active and passive controls of nanoparticles at the surface. The associating partial differential equations are converted into a set of nonlinear, ordinary differential equations using similarity conversions. Then, the equations are reduced to first-order differential equations before further being solved using the shooting method and bvp4c function in MATLAB. All results are presented in graphical and tabular forms. The buoyancy parameter causes the skin friction coefficient to increase in opposing flows but to decrease in assisting flows. In the absence of buoyancy force, there is no difference in the magnitude of the skin friction coefficient between active and passive controls of the nanoparticles. Stagnation has a bigger influence under passive control in enhancing the heat transfer rate as compared to when the fluid is under active control. Assisting flows have better heat and mass transfer rates with a lower magnitude of skin friction coefficient as compared to opposing flows. In this case, the nanofluid parameters, the Brownian motion, and thermophoresis altogether reduce the overall heat transfer rates of the non-Newtonian nanofluid.
format Article
author Halim, Nadhirah Abdul
Mohd Noor, Noor Fadiya
author_facet Halim, Nadhirah Abdul
Mohd Noor, Noor Fadiya
author_sort Halim, Nadhirah Abdul
title Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet
title_short Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet
title_full Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet
title_fullStr Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet
title_full_unstemmed Mixed convection flow of Powell-Eyring nanofluid near a stagnation point along a vertical stretching sheet
title_sort mixed convection flow of powell-eyring nanofluid near a stagnation point along a vertical stretching sheet
publisher MDPI
publishDate 2021
url http://eprints.um.edu.my/27580/
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score 13.160551