Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall

Hybrid nanofluids have received remarkable attention due their promising thermal performance compared to conventional nanofluids. The use of hybrid nanofluids is widely found in the pumping power, solar collector, electronic components, coolants in nano devices, and engine applications etc. Such typ...

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Main Authors: Amir Abbas, Abid Hussanan, Fizza Anwar, Adebowale Martins Obalalu, Mohammed A. Almeshaal, Murugesan Palaniappan, Karim Choubani, Lioua Kolsi, Muhammad Aslam
Format: Article
Language:English
Published: Elsevier 2024-01-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X23011899
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author Amir Abbas
Abid Hussanan
Fizza Anwar
Adebowale Martins Obalalu
Mohammed A. Almeshaal
Murugesan Palaniappan
Karim Choubani
Lioua Kolsi
Muhammad Aslam
author_facet Amir Abbas
Abid Hussanan
Fizza Anwar
Adebowale Martins Obalalu
Mohammed A. Almeshaal
Murugesan Palaniappan
Karim Choubani
Lioua Kolsi
Muhammad Aslam
author_sort Amir Abbas
collection DOAJ
description Hybrid nanofluids have received remarkable attention due their promising thermal performance compared to conventional nanofluids. The use of hybrid nanofluids is widely found in the pumping power, solar collector, electronic components, coolants in nano devices, and engine applications etc. Such types of applications grabbed the attentionof researchers and scientistswith the aim to understand in depththe problems involving the hybrid nanofluids. Therefore, the primary objective of the present investigationis to investigatethe thermal performance of hybrid nanofluid consisting of asuspension of aluminum alloys (AA7075-AA7072) in methanol-base fluid. The non-Newtonian Williamson fluid flow model under Lorentz force, and irregular heat rise/fall impact past incessantly moving thinneedleis considered. The governingflow equations are solved by bvp4c solver. Results are computed for governing flow parameters such as magnetic field parameter, needle thickness parameter, Weissenberg number, volume fractions, and irregular heat rise/fall constants. Graphs confirm that augmenting values of magnetic field parameter, needle thickness parameter, and Weissenberg number lead to downfall of velocity field but reverse behavior is noticed for increasing nanoparticles volume fraction. A rise in temperature field has been noticed by increasing the magnitude of magnetic field, irregular heat rise/fallparameter, and nanoparticles volume fraction but a decline in fluid temperature occurswithraising theneedle thickness parameter. Detailed discussion about the observed variation in physical properties under pertinent parameters effects is presented. The proposed model is validated by comparison with previouslypublished results.
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spelling doaj.art-6b0e04961e1e4bac8548d07f61f8b5852024-01-12T04:56:48ZengElsevierCase Studies in Thermal Engineering2214-157X2024-01-0153103883Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fallAmir Abbas0Abid Hussanan1Fizza Anwar2Adebowale Martins Obalalu3Mohammed A. Almeshaal4Murugesan Palaniappan5Karim Choubani6Lioua Kolsi7Muhammad Aslam8Department of Mathematics, Faculty of Science, University of Gujrat, Sub-Campus Mandi Bahauddin, Mandi Bahauddin, 50400, Pakistan; Corresponding authors.Department of Mathematics, Division of Science and Technology, University of Education, Lahore, 54000, PakistanDepartment of Mathematics, University of Lahore, Sargodha-Campus, Sargodha, 40100, PakistanDepartment of Mathematical Sciences, Augustine University Ilara-Epe, Lagos, NigeriaDepartment of Mechanical Engineering, College of Engineering, Imam Mohammad Ibn Saud Islamic University (IMSIU), Riyadh, 11432, Saudi ArabiaDepartment of Mechanical Engineering, College of Engineering, Imam Mohammad Ibn Saud Islamic University (IMSIU), Riyadh, 11432, Saudi ArabiaDepartment of Mechanical Engineering, College of Engineering, Imam Mohammad Ibn Saud Islamic University (IMSIU), Riyadh, 11432, Saudi ArabiaDepartment of Mechanical Engineering, College of Engineering, University of Ha'il, Ha'il City, 81451, Saudi Arabia; Corresponding author.Institute of Physics and Technology, Ural Federal University, Mira Str. 19, 620002, Ekaterinburg, RussiaHybrid nanofluids have received remarkable attention due their promising thermal performance compared to conventional nanofluids. The use of hybrid nanofluids is widely found in the pumping power, solar collector, electronic components, coolants in nano devices, and engine applications etc. Such types of applications grabbed the attentionof researchers and scientistswith the aim to understand in depththe problems involving the hybrid nanofluids. Therefore, the primary objective of the present investigationis to investigatethe thermal performance of hybrid nanofluid consisting of asuspension of aluminum alloys (AA7075-AA7072) in methanol-base fluid. The non-Newtonian Williamson fluid flow model under Lorentz force, and irregular heat rise/fall impact past incessantly moving thinneedleis considered. The governingflow equations are solved by bvp4c solver. Results are computed for governing flow parameters such as magnetic field parameter, needle thickness parameter, Weissenberg number, volume fractions, and irregular heat rise/fall constants. Graphs confirm that augmenting values of magnetic field parameter, needle thickness parameter, and Weissenberg number lead to downfall of velocity field but reverse behavior is noticed for increasing nanoparticles volume fraction. A rise in temperature field has been noticed by increasing the magnitude of magnetic field, irregular heat rise/fallparameter, and nanoparticles volume fraction but a decline in fluid temperature occurswithraising theneedle thickness parameter. Detailed discussion about the observed variation in physical properties under pertinent parameters effects is presented. The proposed model is validated by comparison with previouslypublished results.http://www.sciencedirect.com/science/article/pii/S2214157X23011899HybridNanofluidMagnetohydrodynamicsWilliamson fluidThin needleIrregular heat rise/fall
spellingShingle Amir Abbas
Abid Hussanan
Fizza Anwar
Adebowale Martins Obalalu
Mohammed A. Almeshaal
Murugesan Palaniappan
Karim Choubani
Lioua Kolsi
Muhammad Aslam
Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall
Case Studies in Thermal Engineering
HybridNanofluid
Magnetohydrodynamics
Williamson fluid
Thin needle
Irregular heat rise/fall
title Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall
title_full Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall
title_fullStr Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall
title_full_unstemmed Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall
title_short Thermal analysis of AA7075-AA7072/methanol via Williamson hybrid nanofluid model past thin needle: Effects of Lorentz force and irregular heat rise/fall
title_sort thermal analysis of aa7075 aa7072 methanol via williamson hybrid nanofluid model past thin needle effects of lorentz force and irregular heat rise fall
topic HybridNanofluid
Magnetohydrodynamics
Williamson fluid
Thin needle
Irregular heat rise/fall
url http://www.sciencedirect.com/science/article/pii/S2214157X23011899
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