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Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach

Nanofluids substantially enhance the physical and thermal characteristics of the base or conducting fluids specifically when interacting with the magnetic field. Several engineering processes like geothermal energy extraction, metal casting, nuclear reactor coolers, nuclear fusion, magnetohydrodynam...

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Autores principales: Ayub, Rashid, Ahmad, Shabbir, Ahmad, Sohail, Akhtar, Yasmeen, Alam, Mohammad Mahtab, Mahmoud, Omar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026789/
https://www.ncbi.nlm.nih.gov/pubmed/35454454
http://dx.doi.org/10.3390/ma15082761
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author Ayub, Rashid
Ahmad, Shabbir
Ahmad, Sohail
Akhtar, Yasmeen
Alam, Mohammad Mahtab
Mahmoud, Omar
author_facet Ayub, Rashid
Ahmad, Shabbir
Ahmad, Sohail
Akhtar, Yasmeen
Alam, Mohammad Mahtab
Mahmoud, Omar
author_sort Ayub, Rashid
collection PubMed
description Nanofluids substantially enhance the physical and thermal characteristics of the base or conducting fluids specifically when interacting with the magnetic field. Several engineering processes like geothermal energy extraction, metal casting, nuclear reactor coolers, nuclear fusion, magnetohydrodynamics flow meters, petrochemicals, and pumps incorporate magnetic field interaction with the nanofluids. On the other hand, an enhancement in heat transfer due to nanofluids is essentially required in various thermal systems. The goal of this study is to figure out that how much a magnetic field affects nanofluid flow in an enclosure because of a dipole. The nanofluid is characterized using a single-phase model, and the governing partial differential equations are computed numerically. A Pseudo time based numerical algorithm is developed to numerically solve the problem. It can be deduced that the Reynolds number and the magnetic parameter have a low effect on the Nusselt number and skin friction. The Nusselt number rises near the dipole location because of an increase in the magnetic parameter [Formula: see text] and the Reynolds number [Formula: see text]. The imposed magnetic field alters the region of high temperature nearby the dipole, while newly generated vortices rotate in alternate directions. Furthermore, nanoparticle volume fraction causes a slight change in the skin friction while it marginally reduces the Nusselt number.
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spelling pubmed-90267892022-04-23 Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach Ayub, Rashid Ahmad, Shabbir Ahmad, Sohail Akhtar, Yasmeen Alam, Mohammad Mahtab Mahmoud, Omar Materials (Basel) Article Nanofluids substantially enhance the physical and thermal characteristics of the base or conducting fluids specifically when interacting with the magnetic field. Several engineering processes like geothermal energy extraction, metal casting, nuclear reactor coolers, nuclear fusion, magnetohydrodynamics flow meters, petrochemicals, and pumps incorporate magnetic field interaction with the nanofluids. On the other hand, an enhancement in heat transfer due to nanofluids is essentially required in various thermal systems. The goal of this study is to figure out that how much a magnetic field affects nanofluid flow in an enclosure because of a dipole. The nanofluid is characterized using a single-phase model, and the governing partial differential equations are computed numerically. A Pseudo time based numerical algorithm is developed to numerically solve the problem. It can be deduced that the Reynolds number and the magnetic parameter have a low effect on the Nusselt number and skin friction. The Nusselt number rises near the dipole location because of an increase in the magnetic parameter [Formula: see text] and the Reynolds number [Formula: see text]. The imposed magnetic field alters the region of high temperature nearby the dipole, while newly generated vortices rotate in alternate directions. Furthermore, nanoparticle volume fraction causes a slight change in the skin friction while it marginally reduces the Nusselt number. MDPI 2022-04-09 /pmc/articles/PMC9026789/ /pubmed/35454454 http://dx.doi.org/10.3390/ma15082761 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ayub, Rashid
Ahmad, Shabbir
Ahmad, Sohail
Akhtar, Yasmeen
Alam, Mohammad Mahtab
Mahmoud, Omar
Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach
title Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach
title_full Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach
title_fullStr Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach
title_full_unstemmed Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach
title_short Numerical Assessment of Dipole Interaction with the Single-Phase Nanofluid Flow in an Enclosure: A Pseudo-Transient Approach
title_sort numerical assessment of dipole interaction with the single-phase nanofluid flow in an enclosure: a pseudo-transient approach
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026789/
https://www.ncbi.nlm.nih.gov/pubmed/35454454
http://dx.doi.org/10.3390/ma15082761
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