The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate

The effect of magnetic strength on the MHD free convection flow of nanofluids over a moving inclined plate with Newtonian heating is analyzed. The governing partial differential equations with Newtonian heating boundary conditions are transformed into a system of nonlinear coupled ordinary different...

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發表在:International Journal of Advanced and Applied Sciences
主要作者: Aznam N.H.Z.; Bosli F.; Ilias M.R.; Ishak S.S.; Ahmad A.M.; Nayan A.
格式: Article
語言:English
出版: Institute of Advanced Science Extension (IASE) 2024
在線閱讀:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188106023&doi=10.21833%2fijaas.2024.01.008&partnerID=40&md5=d0f272f4f56f7d3e5a6201f962ca7720
id 2-s2.0-85188106023
spelling 2-s2.0-85188106023
Aznam N.H.Z.; Bosli F.; Ilias M.R.; Ishak S.S.; Ahmad A.M.; Nayan A.
The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
2024
International Journal of Advanced and Applied Sciences
11
1
10.21833/ijaas.2024.01.008
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188106023&doi=10.21833%2fijaas.2024.01.008&partnerID=40&md5=d0f272f4f56f7d3e5a6201f962ca7720
The effect of magnetic strength on the MHD free convection flow of nanofluids over a moving inclined plate with Newtonian heating is analyzed. The governing partial differential equations with Newtonian heating boundary conditions are transformed into a system of nonlinear coupled ordinary differential equations (ODEs) by using similarity transformations. The Keller Box method was used as a solvation method for ODEs. The skin friction and Nusselt number are evaluated analytically as well as numerically in a tabular form. Numerical results for velocity and temperature are shown graphically for various parameters of interest, and the physics of the problem is well explored. The significant findings of this study are promoting an angle of an aligned magnetic field, magnetic strength parameter, the angle of inclination parameter, local Grashof number, the volume fraction of nanoparticles, and Newtonian heating parameter. The result shows that the moving inclined plate in the same direction increases the skin friction coefficient and reduces the Nusselt number. It is also observed that the velocity of moving an inclined plate with the flow is higher compared to the velocity of moving an inclined plate against the flow. The temperature of a moving inclined plate with the flow is decreased much quicker than the temperature of a moving inclined plate against the flow. The other noteworthy observation of this study demonstrates that the Nusselt number in the Newtonian heating parameter shows that Fe3O4-kerosene is better than Fe3O4-water. © 2023 The Authors. Published by IASE. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
Institute of Advanced Science Extension (IASE)
2313626X
English
Article
All Open Access; Gold Open Access
author Aznam N.H.Z.; Bosli F.; Ilias M.R.; Ishak S.S.; Ahmad A.M.; Nayan A.
spellingShingle Aznam N.H.Z.; Bosli F.; Ilias M.R.; Ishak S.S.; Ahmad A.M.; Nayan A.
The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
author_facet Aznam N.H.Z.; Bosli F.; Ilias M.R.; Ishak S.S.; Ahmad A.M.; Nayan A.
author_sort Aznam N.H.Z.; Bosli F.; Ilias M.R.; Ishak S.S.; Ahmad A.M.; Nayan A.
title The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
title_short The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
title_full The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
title_fullStr The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
title_full_unstemmed The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
title_sort The Newtonian heating effect on MHD free convective boundary layer flow of magnetic nanofluids past a moving inclined plate
publishDate 2024
container_title International Journal of Advanced and Applied Sciences
container_volume 11
container_issue 1
doi_str_mv 10.21833/ijaas.2024.01.008
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188106023&doi=10.21833%2fijaas.2024.01.008&partnerID=40&md5=d0f272f4f56f7d3e5a6201f962ca7720
description The effect of magnetic strength on the MHD free convection flow of nanofluids over a moving inclined plate with Newtonian heating is analyzed. The governing partial differential equations with Newtonian heating boundary conditions are transformed into a system of nonlinear coupled ordinary differential equations (ODEs) by using similarity transformations. The Keller Box method was used as a solvation method for ODEs. The skin friction and Nusselt number are evaluated analytically as well as numerically in a tabular form. Numerical results for velocity and temperature are shown graphically for various parameters of interest, and the physics of the problem is well explored. The significant findings of this study are promoting an angle of an aligned magnetic field, magnetic strength parameter, the angle of inclination parameter, local Grashof number, the volume fraction of nanoparticles, and Newtonian heating parameter. The result shows that the moving inclined plate in the same direction increases the skin friction coefficient and reduces the Nusselt number. It is also observed that the velocity of moving an inclined plate with the flow is higher compared to the velocity of moving an inclined plate against the flow. The temperature of a moving inclined plate with the flow is decreased much quicker than the temperature of a moving inclined plate against the flow. The other noteworthy observation of this study demonstrates that the Nusselt number in the Newtonian heating parameter shows that Fe3O4-kerosene is better than Fe3O4-water. © 2023 The Authors. Published by IASE. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
publisher Institute of Advanced Science Extension (IASE)
issn 2313626X
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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