Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk

In the present time, thermal transportation in the colloidal suspensions under various scenario becomes an influential research direction due to their extensive applications. Therefore, investigation of thermal transport over a rotating disk under the impacts of thermal and velocity slip, imposed Lo...

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Autores principales: Adnan, Umar Khan, Naveed Ahmed, Syed Tauseef Mohyud-Din, Sayer O. Alharbi, Ilyas Khan
Formato: article
Lenguaje:EN
Publicado: Elsevier 2022
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MHD
Acceso en línea:https://doaj.org/article/e81d4f2f70fb46c6bea906c8fc62820c
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spelling oai:doaj.org-article:e81d4f2f70fb46c6bea906c8fc62820c2021-12-02T04:59:42ZThermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk1110-016810.1016/j.aej.2021.07.021https://doaj.org/article/e81d4f2f70fb46c6bea906c8fc62820c2022-03-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S1110016821004919https://doaj.org/toc/1110-0168In the present time, thermal transportation in the colloidal suspensions under various scenario becomes an influential research direction due to their extensive applications. Therefore, investigation of thermal transport over a rotating disk under the impacts of thermal and velocity slip, imposed Lorentz forces and thermal radiation is conducted for multiple shape effects of the nanomaterial. The nanofluid model suspended by Al2O3, TiO2 and Cu nanomaterial is reduced in dimensionless version via similarity variables. After that, RK scheme is implemented and handle the model effectively. The outcomes of various parameters for the velocity, thermal transport, skin friction and local heat transport are sketched and explained broadly. It is examined that the heat transport for the nanofluids becomes dominant throughout the analysis in comparison with conventional liquid. The temperature of the nanofluids significantly enhances due to the velocity slip effects. Moreover, thermal radiation and the volumetric fraction of the nanomaterials favor the local heat transfer rate. AdnanUmar KhanNaveed AhmedSyed Tauseef Mohyud-DinSayer O. AlharbiIlyas KhanElsevierarticleRotating diskMHDThermal radiationThermal conductivityRunge-Kutta schemeShear stressesEngineering (General). Civil engineering (General)TA1-2040ENAlexandria Engineering Journal, Vol 61, Iss 3, Pp 2318-2329 (2022)
institution DOAJ
collection DOAJ
language EN
topic Rotating disk
MHD
Thermal radiation
Thermal conductivity
Runge-Kutta scheme
Shear stresses
Engineering (General). Civil engineering (General)
TA1-2040
spellingShingle Rotating disk
MHD
Thermal radiation
Thermal conductivity
Runge-Kutta scheme
Shear stresses
Engineering (General). Civil engineering (General)
TA1-2040
Adnan
Umar Khan
Naveed Ahmed
Syed Tauseef Mohyud-Din
Sayer O. Alharbi
Ilyas Khan
Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
description In the present time, thermal transportation in the colloidal suspensions under various scenario becomes an influential research direction due to their extensive applications. Therefore, investigation of thermal transport over a rotating disk under the impacts of thermal and velocity slip, imposed Lorentz forces and thermal radiation is conducted for multiple shape effects of the nanomaterial. The nanofluid model suspended by Al2O3, TiO2 and Cu nanomaterial is reduced in dimensionless version via similarity variables. After that, RK scheme is implemented and handle the model effectively. The outcomes of various parameters for the velocity, thermal transport, skin friction and local heat transport are sketched and explained broadly. It is examined that the heat transport for the nanofluids becomes dominant throughout the analysis in comparison with conventional liquid. The temperature of the nanofluids significantly enhances due to the velocity slip effects. Moreover, thermal radiation and the volumetric fraction of the nanomaterials favor the local heat transfer rate.
format article
author Adnan
Umar Khan
Naveed Ahmed
Syed Tauseef Mohyud-Din
Sayer O. Alharbi
Ilyas Khan
author_facet Adnan
Umar Khan
Naveed Ahmed
Syed Tauseef Mohyud-Din
Sayer O. Alharbi
Ilyas Khan
author_sort Adnan
title Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
title_short Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
title_full Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
title_fullStr Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
title_full_unstemmed Thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
title_sort thermal improvement in magnetized nanofluid for multiple shapes nanoparticles over radiative rotating disk
publisher Elsevier
publishDate 2022
url https://doaj.org/article/e81d4f2f70fb46c6bea906c8fc62820c
work_keys_str_mv AT adnan thermalimprovementinmagnetizednanofluidformultipleshapesnanoparticlesoverradiativerotatingdisk
AT umarkhan thermalimprovementinmagnetizednanofluidformultipleshapesnanoparticlesoverradiativerotatingdisk
AT naveedahmed thermalimprovementinmagnetizednanofluidformultipleshapesnanoparticlesoverradiativerotatingdisk
AT syedtauseefmohyuddin thermalimprovementinmagnetizednanofluidformultipleshapesnanoparticlesoverradiativerotatingdisk
AT sayeroalharbi thermalimprovementinmagnetizednanofluidformultipleshapesnanoparticlesoverradiativerotatingdisk
AT ilyaskhan thermalimprovementinmagnetizednanofluidformultipleshapesnanoparticlesoverradiativerotatingdisk
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