Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field

Nanofluids have various operations and prospects in heat transfer engineering to produce novel technological equipment for cooling purposes. In response to nanofluid's possible application, the transient convective alumina-water nanofluid flow in a square vessel in the presence of magnetic fiel...

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Main Authors: M. Arifuzzaman, M.J. Uddin
Format: Article
Language:English
Published: Elsevier 2021-06-01
Series:Results in Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S259012302100027X
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spelling doaj-2f02677c0d714c5393b88740fc38efc52021-06-19T04:56:06ZengElsevierResults in Engineering2590-12302021-06-0110100226Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic fieldM. Arifuzzaman0M.J. Uddin1Department of General Educational Development, Faculty of Science and Information Technology, Daffodil International University, Dhaka, BangladeshCorresponding author.; Department of General Educational Development, Faculty of Science and Information Technology, Daffodil International University, Dhaka, BangladeshNanofluids have various operations and prospects in heat transfer engineering to produce novel technological equipment for cooling purposes. In response to nanofluid's possible application, the transient convective alumina-water nanofluid flow in a square vessel in the presence of magnetic field and exothermic chemical reaction has been numerically investigated. We consider a square vessel, where the lower boundary of the vessel is heated, the two vertical side walls are relatively cold, and the upper wall is insulated. The finite element method based on Galerkin scheme is used to solve the governing partial differential equations along the imposing boundary conditions. We verified the present results with the standard experimental published results. The flow and thermal forms, and local Nusselt number are investigated for the numerous appropriate parameters. The time effects on the heat transfer is examined. The result shows that as the Rayleigh number increased from 105 to 106, the heat transfer increased by 72.78%. Compared with the base fluid water, the heat transfer of the alumina-water nanofluid with a nanoparticle volume fraction of 6% increased by 10.42%. The magnetic field and the Arrhenius chemical reaction parameters regulates the nanofluid flow and the heat transfer.http://www.sciencedirect.com/science/article/pii/S259012302100027XHeat transferFinite element methodAlumina-water nanofluidSquare vesselMagnetic fieldFrank-kamenetskii number
collection DOAJ
language English
format Article
sources DOAJ
author M. Arifuzzaman
M.J. Uddin
spellingShingle M. Arifuzzaman
M.J. Uddin
Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
Results in Engineering
Heat transfer
Finite element method
Alumina-water nanofluid
Square vessel
Magnetic field
Frank-kamenetskii number
author_facet M. Arifuzzaman
M.J. Uddin
author_sort M. Arifuzzaman
title Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
title_short Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
title_full Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
title_fullStr Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
title_full_unstemmed Convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
title_sort convective flow of alumina–water nanofluid in a square vessel in presence of the exothermic chemical reaction and hydromagnetic field
publisher Elsevier
series Results in Engineering
issn 2590-1230
publishDate 2021-06-01
description Nanofluids have various operations and prospects in heat transfer engineering to produce novel technological equipment for cooling purposes. In response to nanofluid's possible application, the transient convective alumina-water nanofluid flow in a square vessel in the presence of magnetic field and exothermic chemical reaction has been numerically investigated. We consider a square vessel, where the lower boundary of the vessel is heated, the two vertical side walls are relatively cold, and the upper wall is insulated. The finite element method based on Galerkin scheme is used to solve the governing partial differential equations along the imposing boundary conditions. We verified the present results with the standard experimental published results. The flow and thermal forms, and local Nusselt number are investigated for the numerous appropriate parameters. The time effects on the heat transfer is examined. The result shows that as the Rayleigh number increased from 105 to 106, the heat transfer increased by 72.78%. Compared with the base fluid water, the heat transfer of the alumina-water nanofluid with a nanoparticle volume fraction of 6% increased by 10.42%. The magnetic field and the Arrhenius chemical reaction parameters regulates the nanofluid flow and the heat transfer.
topic Heat transfer
Finite element method
Alumina-water nanofluid
Square vessel
Magnetic field
Frank-kamenetskii number
url http://www.sciencedirect.com/science/article/pii/S259012302100027X
work_keys_str_mv AT marifuzzaman convectiveflowofaluminawaternanofluidinasquarevesselinpresenceoftheexothermicchemicalreactionandhydromagneticfield
AT mjuddin convectiveflowofaluminawaternanofluidinasquarevesselinpresenceoftheexothermicchemicalreactionandhydromagneticfield
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