Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface

Due to its significant applications in physics, chemistry, and engineering, some interest has been given in recent years to research the boundary layer flow of magnetohydrodynamic nanofluids. The numerical results were analyzed for temperature profile, concentration profile, reduced number of Nussel...

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Main Author: Abd Elazem Nader Y.
Format: Article
Language:English
Published: De Gruyter 2021-04-01
Series:Nonlinear Engineering
Subjects:
Online Access:https://doi.org/10.1515/nleng-2021-0003
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spelling doaj-5bf5edb3b79541e9a9a71bc30438395e2021-10-03T07:42:39ZengDe GruyterNonlinear Engineering2192-80292021-04-01101283810.1515/nleng-2021-0003Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surfaceAbd Elazem Nader Y.0Department of Basic Science, Pyramids Higher Institute for Engineering and Technology, 6th of October City, Giza, Egypt, E-mail: naderel-nafrawy@yahoo.comDue to its significant applications in physics, chemistry, and engineering, some interest has been given in recent years to research the boundary layer flow of magnetohydrodynamic nanofluids. The numerical results were analyzed for temperature profile, concentration profile, reduced number of Nusselt and reduced number of Sherwood. It has also been shown that the magnetic field, the Eckert number, and the thermophoresis parameter boost the temperature field and raise the thermal boundary layer thickness while the Prandtl number reduces the temperature field at high values and lowers the thermal boundary layer thickness. However, if Lewis number is higher than the unit and the Eckert number increases, the concentration profiles decrease as well. Ultimately, the concentration profiles are reduced for the variance of the Brownian motion parameter and the Eckert number, where the thickness of the boundary layer for the mass friction feature is reduced.https://doi.org/10.1515/nleng-2021-0003nanofluidsstretching sheetmagnetic fieldviscous dissipation and joule heatingchebyshev pseudospectral techniquechinese library classification: o302
collection DOAJ
language English
format Article
sources DOAJ
author Abd Elazem Nader Y.
spellingShingle Abd Elazem Nader Y.
Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface
Nonlinear Engineering
nanofluids
stretching sheet
magnetic field
viscous dissipation and joule heating
chebyshev pseudospectral technique
chinese library classification: o302
author_facet Abd Elazem Nader Y.
author_sort Abd Elazem Nader Y.
title Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface
title_short Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface
title_full Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface
title_fullStr Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface
title_full_unstemmed Numerical results for influence the flow of MHD nanofluids on heat and mass transfer past a stretched surface
title_sort numerical results for influence the flow of mhd nanofluids on heat and mass transfer past a stretched surface
publisher De Gruyter
series Nonlinear Engineering
issn 2192-8029
publishDate 2021-04-01
description Due to its significant applications in physics, chemistry, and engineering, some interest has been given in recent years to research the boundary layer flow of magnetohydrodynamic nanofluids. The numerical results were analyzed for temperature profile, concentration profile, reduced number of Nusselt and reduced number of Sherwood. It has also been shown that the magnetic field, the Eckert number, and the thermophoresis parameter boost the temperature field and raise the thermal boundary layer thickness while the Prandtl number reduces the temperature field at high values and lowers the thermal boundary layer thickness. However, if Lewis number is higher than the unit and the Eckert number increases, the concentration profiles decrease as well. Ultimately, the concentration profiles are reduced for the variance of the Brownian motion parameter and the Eckert number, where the thickness of the boundary layer for the mass friction feature is reduced.
topic nanofluids
stretching sheet
magnetic field
viscous dissipation and joule heating
chebyshev pseudospectral technique
chinese library classification: o302
url https://doi.org/10.1515/nleng-2021-0003
work_keys_str_mv AT abdelazemnadery numericalresultsforinfluencetheflowofmhdnanofluidsonheatandmasstransferpastastretchedsurface
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