Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge

Nowadays, hybrid nanofluids play an important role in heat transfer systems. They are a good alternative to increase the efficiency of heat transfer and save the energy. Thermal radiation and mixed convection flow of hybrid nanofluids past a permeable moving and stationary wedge were studied in this...

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Main Authors: Siti Shuhada, Ishak, Nurul Nurfatihah, Mazlan, Mohd Rijal, Ilias, Roselah, Osman, Abdul Rahman, Mohd Kasim, Nurul Farahain, Mohammad
Format: Article
Language:English
Published: Semarak Ilmu Publishing 2022
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Online Access:http://umpir.ump.edu.my/id/eprint/38366/1/Radiation%20Effects%20on%20Inclined%20Magnetohydrodynamics%20Mixed%20Convection.pdf
http://umpir.ump.edu.my/id/eprint/38366/
https://doi.org/10.37934/araset.28.3.6884
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spelling my.ump.umpir.383662023-08-14T07:13:26Z http://umpir.ump.edu.my/id/eprint/38366/ Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge Siti Shuhada, Ishak Nurul Nurfatihah, Mazlan Mohd Rijal, Ilias Roselah, Osman Abdul Rahman, Mohd Kasim Nurul Farahain, Mohammad Q Science (General) QA Mathematics Nowadays, hybrid nanofluids play an important role in heat transfer systems. They are a good alternative to increase the efficiency of heat transfer and save the energy. Thermal radiation and mixed convection flow of hybrid nanofluids past a permeable moving and stationary wedge were studied in this research. This research uses water as a base fluid to investigate the effects of silver (Ag) and magnesium oxide (MgO) nanoparticles. Similarity transformation techniques are used to convert the partial differential equations of hybrid nanofluids to ordinary differential equations, which is then solved numerically by applying the implicit finite difference Keller box method. The results of the research are illustrated graphically to show the behavior of velocity and temperature profiles, as well as skin friction and Nusselt number. Increasing the parameters of the aligned magnetic field, magnetic field interaction, mixed convection, and wedge angle parameter results in higher velocity profiles but lower temperature profiles. As the radiation parameter and the nanoparticle volume fraction increase, the temperature rises and the velocity decreases. With the exception of the radiation parameter, the skin friction and Nusselt number increase as the alignment angle of the magnetic field, the interaction of the magnetic field, the mixed convection, the wedge angle parameter, and the volume fraction of nanoparticle Ag and MgO rise. As a result of these findings, the velocity profiles and Nusselt numbers of moving wedges are higher, but the temperature profiles and skin friction are lower than those of stationary and moving against flow wedges. In addition, a comparison with previously published research is presented, with excellent agreement discovered. The results of this research will contribute to the field of knowledge in mathematics by bringing additional information for mathematician interested in future research on hybrid nanofluids. Semarak Ilmu Publishing 2022 Article PeerReviewed pdf en cc_by_4 http://umpir.ump.edu.my/id/eprint/38366/1/Radiation%20Effects%20on%20Inclined%20Magnetohydrodynamics%20Mixed%20Convection.pdf Siti Shuhada, Ishak and Nurul Nurfatihah, Mazlan and Mohd Rijal, Ilias and Roselah, Osman and Abdul Rahman, Mohd Kasim and Nurul Farahain, Mohammad (2022) Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge. Journal of Advanced Research in Applied Sciences and Engineering Technology, 28 (3). pp. 68-84. ISSN 2462-1943. (Published) https://doi.org/10.37934/araset.28.3.6884 10.37934/araset.28.3.6884
institution Universiti Malaysia Pahang
building UMP Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Pahang
content_source UMP Institutional Repository
url_provider http://umpir.ump.edu.my/
language English
topic Q Science (General)
QA Mathematics
spellingShingle Q Science (General)
QA Mathematics
Siti Shuhada, Ishak
Nurul Nurfatihah, Mazlan
Mohd Rijal, Ilias
Roselah, Osman
Abdul Rahman, Mohd Kasim
Nurul Farahain, Mohammad
Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge
description Nowadays, hybrid nanofluids play an important role in heat transfer systems. They are a good alternative to increase the efficiency of heat transfer and save the energy. Thermal radiation and mixed convection flow of hybrid nanofluids past a permeable moving and stationary wedge were studied in this research. This research uses water as a base fluid to investigate the effects of silver (Ag) and magnesium oxide (MgO) nanoparticles. Similarity transformation techniques are used to convert the partial differential equations of hybrid nanofluids to ordinary differential equations, which is then solved numerically by applying the implicit finite difference Keller box method. The results of the research are illustrated graphically to show the behavior of velocity and temperature profiles, as well as skin friction and Nusselt number. Increasing the parameters of the aligned magnetic field, magnetic field interaction, mixed convection, and wedge angle parameter results in higher velocity profiles but lower temperature profiles. As the radiation parameter and the nanoparticle volume fraction increase, the temperature rises and the velocity decreases. With the exception of the radiation parameter, the skin friction and Nusselt number increase as the alignment angle of the magnetic field, the interaction of the magnetic field, the mixed convection, the wedge angle parameter, and the volume fraction of nanoparticle Ag and MgO rise. As a result of these findings, the velocity profiles and Nusselt numbers of moving wedges are higher, but the temperature profiles and skin friction are lower than those of stationary and moving against flow wedges. In addition, a comparison with previously published research is presented, with excellent agreement discovered. The results of this research will contribute to the field of knowledge in mathematics by bringing additional information for mathematician interested in future research on hybrid nanofluids.
format Article
author Siti Shuhada, Ishak
Nurul Nurfatihah, Mazlan
Mohd Rijal, Ilias
Roselah, Osman
Abdul Rahman, Mohd Kasim
Nurul Farahain, Mohammad
author_facet Siti Shuhada, Ishak
Nurul Nurfatihah, Mazlan
Mohd Rijal, Ilias
Roselah, Osman
Abdul Rahman, Mohd Kasim
Nurul Farahain, Mohammad
author_sort Siti Shuhada, Ishak
title Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge
title_short Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge
title_full Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge
title_fullStr Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge
title_full_unstemmed Radiation Effects on Inclined Magnetohydrodynamics Mixed Convection Boundary Layer Flow of Hybrid Nanofluids over a Moving and Static Wedge
title_sort radiation effects on inclined magnetohydrodynamics mixed convection boundary layer flow of hybrid nanofluids over a moving and static wedge
publisher Semarak Ilmu Publishing
publishDate 2022
url http://umpir.ump.edu.my/id/eprint/38366/1/Radiation%20Effects%20on%20Inclined%20Magnetohydrodynamics%20Mixed%20Convection.pdf
http://umpir.ump.edu.my/id/eprint/38366/
https://doi.org/10.37934/araset.28.3.6884
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score 13.18916