The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.

The study explored the 3D numerical solution of an unsteady Ag-MgO/water hybrid nanofluid flow with mass and energy transmission generated by a wavy rotating disc moving up and down. The nanofluid is generated in the context of Ag-MgO nanomaterials. Magnesium oxide and silver nanoparticles have been...

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Autores principales: Xiao-Hong Zhang, Ebrahem A Algehyne, Maryam G Alshehri, Muhammad Bilal, Muhammad Altaf Khan, Taseer Muhammad
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Publicado: Public Library of Science (PLoS) 2021
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spelling oai:doaj.org-article:a6e5447265fc42ce9221453193652a852021-12-02T20:15:01ZThe parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.1932-620310.1371/journal.pone.0254457https://doaj.org/article/a6e5447265fc42ce9221453193652a852021-01-01T00:00:00Zhttps://doi.org/10.1371/journal.pone.0254457https://doaj.org/toc/1932-6203The study explored the 3D numerical solution of an unsteady Ag-MgO/water hybrid nanofluid flow with mass and energy transmission generated by a wavy rotating disc moving up and down. The nanofluid is generated in the context of Ag-MgO nanomaterials. Magnesium oxide and silver nanoparticles have been heavily reported to have broad-spectrum antibacterial operations among metal oxides and metals. Silver nanoparticles are without a doubt the most commonly used inorganic nanoparticles, with numerous innovations in biomaterial's detection and antimicrobial operations. However, in current paper, the intention of the analysis is to boost thermal energy transmitting rates for a range of industrial implementations. When compared to a flat surface, energy transition is increased up to 15% due to the wavy swirling surface. The problem has been formulated as a system of PDEs, which included the Navier Stokes and Maxwell equations. Following that, the modeled equations are reduced to a dimensionless system of differential equations. The derived equations are then solved numerically using the Parametric Continuation Method (PCM). The findings are displayed graphically and debated. The geometry of a spinning disc is thought to have a positive impact on velocity and heat energy transfer. The insertion of nanostructured materials (silver and magnesium-oxide) increased the carrier fluid's thermal properties considerably. It is more effective at dealing with low energy transmission.Xiao-Hong ZhangEbrahem A AlgehyneMaryam G AlshehriMuhammad BilalMuhammad Altaf KhanTaseer MuhammadPublic Library of Science (PLoS)articleMedicineRScienceQENPLoS ONE, Vol 16, Iss 8, p e0254457 (2021)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Xiao-Hong Zhang
Ebrahem A Algehyne
Maryam G Alshehri
Muhammad Bilal
Muhammad Altaf Khan
Taseer Muhammad
The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
description The study explored the 3D numerical solution of an unsteady Ag-MgO/water hybrid nanofluid flow with mass and energy transmission generated by a wavy rotating disc moving up and down. The nanofluid is generated in the context of Ag-MgO nanomaterials. Magnesium oxide and silver nanoparticles have been heavily reported to have broad-spectrum antibacterial operations among metal oxides and metals. Silver nanoparticles are without a doubt the most commonly used inorganic nanoparticles, with numerous innovations in biomaterial's detection and antimicrobial operations. However, in current paper, the intention of the analysis is to boost thermal energy transmitting rates for a range of industrial implementations. When compared to a flat surface, energy transition is increased up to 15% due to the wavy swirling surface. The problem has been formulated as a system of PDEs, which included the Navier Stokes and Maxwell equations. Following that, the modeled equations are reduced to a dimensionless system of differential equations. The derived equations are then solved numerically using the Parametric Continuation Method (PCM). The findings are displayed graphically and debated. The geometry of a spinning disc is thought to have a positive impact on velocity and heat energy transfer. The insertion of nanostructured materials (silver and magnesium-oxide) increased the carrier fluid's thermal properties considerably. It is more effective at dealing with low energy transmission.
format article
author Xiao-Hong Zhang
Ebrahem A Algehyne
Maryam G Alshehri
Muhammad Bilal
Muhammad Altaf Khan
Taseer Muhammad
author_facet Xiao-Hong Zhang
Ebrahem A Algehyne
Maryam G Alshehri
Muhammad Bilal
Muhammad Altaf Khan
Taseer Muhammad
author_sort Xiao-Hong Zhang
title The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
title_short The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
title_full The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
title_fullStr The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
title_full_unstemmed The parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
title_sort parametric study of hybrid nanofluid flow with heat transition characteristics over a fluctuating spinning disk.
publisher Public Library of Science (PLoS)
publishDate 2021
url https://doaj.org/article/a6e5447265fc42ce9221453193652a85
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