MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder
This study extends the mathematical model of MHD free convection flow on horizontal circular cylinder, with considering the Casson ferrofluid, specific to a stagnation region case. The set of non-linear partial differential equations that governed the model is first transformed to a simpler set of e...
Published in: | Journal of Advanced Research in Numerical Heat Transfer |
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Penerbit Akademia Baru
2024
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2-s2.0-85209786494 Mohamed M.K.A.; Ong H.R.; Soid S.K.; Alkasasbeh H.T. MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder 2024 Journal of Advanced Research in Numerical Heat Transfer 25 1 10.37934/arnht.25.1.2536 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85209786494&doi=10.37934%2farnht.25.1.2536&partnerID=40&md5=76e64f8b342d0a1ca0225379f22c7ac3 This study extends the mathematical model of MHD free convection flow on horizontal circular cylinder, with considering the Casson ferrofluid, specific to a stagnation region case. The set of non-linear partial differential equations that governed the model is first transformed to a simpler set of equations using the non-similar transformation. This set of equations then reduced to ordinary partial equations which reflects to the case of stagnation region and solved numerically using the implicit finite difference method known as the Keller-box method. Blood and magnetite are taken as the based-fluid and the ferroparticles for the Casson ferrofluid, respectively. From the numerical study, it was found that the Casson ferrofluid with the same Prandtl values had higher thermal and velocity boundary layer thicknesses compared to a Newtonian ferrofluid. The increase of Casson parameter reduced the thermal boundary layer thickness which physically enhanced the Nusselt number. © 2024, Penerbit Akademia Baru. All rights reserved. Penerbit Akademia Baru 27350142 English Article All Open Access; Hybrid Gold Open Access |
author |
Mohamed M.K.A.; Ong H.R.; Soid S.K.; Alkasasbeh H.T. |
spellingShingle |
Mohamed M.K.A.; Ong H.R.; Soid S.K.; Alkasasbeh H.T. MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
author_facet |
Mohamed M.K.A.; Ong H.R.; Soid S.K.; Alkasasbeh H.T. |
author_sort |
Mohamed M.K.A.; Ong H.R.; Soid S.K.; Alkasasbeh H.T. |
title |
MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
title_short |
MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
title_full |
MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
title_fullStr |
MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
title_full_unstemmed |
MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
title_sort |
MHD Natural Convection Flow of Casson Ferrofluid at Lower Stagnation Point on a Horizontal Circular Cylinder |
publishDate |
2024 |
container_title |
Journal of Advanced Research in Numerical Heat Transfer |
container_volume |
25 |
container_issue |
1 |
doi_str_mv |
10.37934/arnht.25.1.2536 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85209786494&doi=10.37934%2farnht.25.1.2536&partnerID=40&md5=76e64f8b342d0a1ca0225379f22c7ac3 |
description |
This study extends the mathematical model of MHD free convection flow on horizontal circular cylinder, with considering the Casson ferrofluid, specific to a stagnation region case. The set of non-linear partial differential equations that governed the model is first transformed to a simpler set of equations using the non-similar transformation. This set of equations then reduced to ordinary partial equations which reflects to the case of stagnation region and solved numerically using the implicit finite difference method known as the Keller-box method. Blood and magnetite are taken as the based-fluid and the ferroparticles for the Casson ferrofluid, respectively. From the numerical study, it was found that the Casson ferrofluid with the same Prandtl values had higher thermal and velocity boundary layer thicknesses compared to a Newtonian ferrofluid. The increase of Casson parameter reduced the thermal boundary layer thickness which physically enhanced the Nusselt number. © 2024, Penerbit Akademia Baru. All rights reserved. |
publisher |
Penerbit Akademia Baru |
issn |
27350142 |
language |
English |
format |
Article |
accesstype |
All Open Access; Hybrid Gold Open Access |
record_format |
scopus |
collection |
Scopus |
_version_ |
1820775431747403776 |