Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating

The proficiency of hybrid nanoparticles in augmenting the heat transfer has fascinated many researchers to further analysing the working fluid. The present paper is focused on the MHD hybrid nanofluid flow with heat transfer on a moving plate with Joule heating. The combination of metal (Cu) and met...

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Autores principales: Najiyah Safwa Khashi'ie, Norihan Md Arifin, Ioan Pop
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Lenguaje:EN
Publicado: Elsevier 2022
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Acceso en línea:https://doaj.org/article/11048f2f95914e12b88365f9f8f007f6
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spelling oai:doaj.org-article:11048f2f95914e12b88365f9f8f007f62021-11-30T04:13:53ZMagnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating1110-016810.1016/j.aej.2021.07.032https://doaj.org/article/11048f2f95914e12b88365f9f8f007f62022-03-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S1110016821005020https://doaj.org/toc/1110-0168The proficiency of hybrid nanoparticles in augmenting the heat transfer has fascinated many researchers to further analysing the working fluid. The present paper is focused on the MHD hybrid nanofluid flow with heat transfer on a moving plate with Joule heating. The combination of metal (Cu) and metal oxide (Al2O3) nanoparticles with water (H2O) as the base fluid is used for the analysis. Similarity transformation reduces the complexity of the PDEs into a system of ODEs, which is then solved numerically using the function bvp4c from MATLAB for different values of the governing parameters. Two solutions are obtained when the plate is moved oppositely from the free stream flow. Analysis of flow stability unveils the first solution as the real physical solution, which is realizable in practice. From physical perspective, the real solution must be available for all cases of λ which affirms the finding from stability analysis. An upsurge of suction’s strength and magnetic parameter enhances the heat transfer operation and extends the critical value λc. Meanwhile, there is no change on the critical value when the Eckert number is added. This study is important in determining the thermal behavior of Cu-Al2O3/H2O when the physical parameters like magnetic field and Joule heating are embedded. The results are new and original with many practical applications in the modern industry.Najiyah Safwa Khashi'ieNorihan Md ArifinIoan PopElsevierarticleHybrid nanofluidHeat transferJoule heatingMagnetohydrodynamicsMoving plateStability AnalysisEngineering (General). Civil engineering (General)TA1-2040ENAlexandria Engineering Journal, Vol 61, Iss 3, Pp 1938-1945 (2022)
institution DOAJ
collection DOAJ
language EN
topic Hybrid nanofluid
Heat transfer
Joule heating
Magnetohydrodynamics
Moving plate
Stability Analysis
Engineering (General). Civil engineering (General)
TA1-2040
spellingShingle Hybrid nanofluid
Heat transfer
Joule heating
Magnetohydrodynamics
Moving plate
Stability Analysis
Engineering (General). Civil engineering (General)
TA1-2040
Najiyah Safwa Khashi'ie
Norihan Md Arifin
Ioan Pop
Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating
description The proficiency of hybrid nanoparticles in augmenting the heat transfer has fascinated many researchers to further analysing the working fluid. The present paper is focused on the MHD hybrid nanofluid flow with heat transfer on a moving plate with Joule heating. The combination of metal (Cu) and metal oxide (Al2O3) nanoparticles with water (H2O) as the base fluid is used for the analysis. Similarity transformation reduces the complexity of the PDEs into a system of ODEs, which is then solved numerically using the function bvp4c from MATLAB for different values of the governing parameters. Two solutions are obtained when the plate is moved oppositely from the free stream flow. Analysis of flow stability unveils the first solution as the real physical solution, which is realizable in practice. From physical perspective, the real solution must be available for all cases of λ which affirms the finding from stability analysis. An upsurge of suction’s strength and magnetic parameter enhances the heat transfer operation and extends the critical value λc. Meanwhile, there is no change on the critical value when the Eckert number is added. This study is important in determining the thermal behavior of Cu-Al2O3/H2O when the physical parameters like magnetic field and Joule heating are embedded. The results are new and original with many practical applications in the modern industry.
format article
author Najiyah Safwa Khashi'ie
Norihan Md Arifin
Ioan Pop
author_facet Najiyah Safwa Khashi'ie
Norihan Md Arifin
Ioan Pop
author_sort Najiyah Safwa Khashi'ie
title Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating
title_short Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating
title_full Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating
title_fullStr Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating
title_full_unstemmed Magnetohydrodynamics (MHD) boundary layer flow of hybrid nanofluid over a moving plate with Joule heating
title_sort magnetohydrodynamics (mhd) boundary layer flow of hybrid nanofluid over a moving plate with joule heating
publisher Elsevier
publishDate 2022
url https://doaj.org/article/11048f2f95914e12b88365f9f8f007f6
work_keys_str_mv AT najiyahsafwakhashiie magnetohydrodynamicsmhdboundarylayerflowofhybridnanofluidoveramovingplatewithjouleheating
AT norihanmdarifin magnetohydrodynamicsmhdboundarylayerflowofhybridnanofluidoveramovingplatewithjouleheating
AT ioanpop magnetohydrodynamicsmhdboundarylayerflowofhybridnanofluidoveramovingplatewithjouleheating
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