Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena

The practical applications of current model include materials science, heat exchangers, renewable energy, nanotechnology, manufacturing, medical treatments, and environmental engineering. Insights gained from this study could enhance material design, improve heat transfer efficiency in various syste...

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Main Authors: Munawar Abbas, Nargis Khan, Ali Saleh Alshomrani, M.S. Hashmi, Mustafa Inc
Format: Article
Language:English
Published: Elsevier 2023-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X23007335
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author Munawar Abbas
Nargis Khan
Ali Saleh Alshomrani
M.S. Hashmi
Mustafa Inc
author_facet Munawar Abbas
Nargis Khan
Ali Saleh Alshomrani
M.S. Hashmi
Mustafa Inc
author_sort Munawar Abbas
collection DOAJ
description The practical applications of current model include materials science, heat exchangers, renewable energy, nanotechnology, manufacturing, medical treatments, and environmental engineering. Insights gained from this study could enhance material design, improve heat transfer efficiency in various systems, optimize energy conversion processes, and contribute to advancements in nanotechnology, medical therapies, and engineering design. In this investigation, melting heat transmission and non-uniform heat generation features of ternary hybrid nanofluid flow over a slender stretched sheet are examined. This proposed model goal is to compare the effectiveness of the well-known ternary hybrid nanofluid models Xue and Yamada-Ota. Utilized is a ternary hybrid nanofluid made up of titanium oxide (TiO2), aluminum oxide (Al2O3), cobalt iron oxide (CoFe2O4), and Ethylene glycol (C2H6O2) as the base fluid. The course leading equations are transformed using appropriate similarity variables, and the following equations are then mathematically solved using the shooting approach (bvp4c). The impacts of some physical parameters on the typical profiles (concentration, velocity and thermal) are explained using the Xue and Yamada-Ota models. Additionally, the same parameters are used to explore the mass and heat transfer rates, and the results are shown in tabular format. For higher values of wall thickness parameter, the velocity and thermal profiles enhance. It also reduces the rates of mass and heat transmission. The Yamada-Ota model outperforms the Xue ternary hybrid nanofluid model in terms of heat and mass transfer efficiency.
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spelling doaj.art-d45021922fc540fb82e0146810e0677d2023-09-30T04:54:39ZengElsevierCase Studies in Thermal Engineering2214-157X2023-10-0150103427Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomenaMunawar Abbas0Nargis Khan1Ali Saleh Alshomrani2M.S. Hashmi3Mustafa Inc4Department of Mathematics, The Islamia University of Bahawalpur, PakistanDepartment of Mathematics, The Islamia University of Bahawalpur, PakistanDepartment of Mathematics, King Abdulaziz University, P. O. Box 80203, Jeddah, 21589, Saudi ArabiaDepartment of Mathematics, The Govt. Sadiq College Women University, Bahawalpur, PakistanDepartment of Mathematics, Firat University, 23119, Elazig, Turkey; Department of Medical Research, China Medical University, 40402, Taichung, Taiwan; Corresponding author. Department of Mathematics, Firat University, 23119, Elazig, Turkey.The practical applications of current model include materials science, heat exchangers, renewable energy, nanotechnology, manufacturing, medical treatments, and environmental engineering. Insights gained from this study could enhance material design, improve heat transfer efficiency in various systems, optimize energy conversion processes, and contribute to advancements in nanotechnology, medical therapies, and engineering design. In this investigation, melting heat transmission and non-uniform heat generation features of ternary hybrid nanofluid flow over a slender stretched sheet are examined. This proposed model goal is to compare the effectiveness of the well-known ternary hybrid nanofluid models Xue and Yamada-Ota. Utilized is a ternary hybrid nanofluid made up of titanium oxide (TiO2), aluminum oxide (Al2O3), cobalt iron oxide (CoFe2O4), and Ethylene glycol (C2H6O2) as the base fluid. The course leading equations are transformed using appropriate similarity variables, and the following equations are then mathematically solved using the shooting approach (bvp4c). The impacts of some physical parameters on the typical profiles (concentration, velocity and thermal) are explained using the Xue and Yamada-Ota models. Additionally, the same parameters are used to explore the mass and heat transfer rates, and the results are shown in tabular format. For higher values of wall thickness parameter, the velocity and thermal profiles enhance. It also reduces the rates of mass and heat transmission. The Yamada-Ota model outperforms the Xue ternary hybrid nanofluid model in terms of heat and mass transfer efficiency.http://www.sciencedirect.com/science/article/pii/S2214157X23007335Ternary hybrid nanofluidNon-uniform heat sourceMelting phenomenaXue and Yamada-OtaActivation energy
spellingShingle Munawar Abbas
Nargis Khan
Ali Saleh Alshomrani
M.S. Hashmi
Mustafa Inc
Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
Case Studies in Thermal Engineering
Ternary hybrid nanofluid
Non-uniform heat source
Melting phenomena
Xue and Yamada-Ota
Activation energy
title Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
title_full Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
title_fullStr Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
title_full_unstemmed Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
title_short Performance-based comparison of Xue and Yamada–Ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
title_sort performance based comparison of xue and yamada ota models of ternary hybrid nanofluid flow over a slendering stretching sheet with activation energy and melting phenomena
topic Ternary hybrid nanofluid
Non-uniform heat source
Melting phenomena
Xue and Yamada-Ota
Activation energy
url http://www.sciencedirect.com/science/article/pii/S2214157X23007335
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