Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features
Abstract Hybrid nanofluid are the modified class of nanofluids with extra high thermal performances and present different applications in automotive cooling, heat transfer devices, solar collectors, engine applications, fusion processes, machine cutting, chemical processes etc. This thermal research...
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Nature Portfolio
2023-05-01
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Series: | Scientific Reports |
Online Access: | https://doi.org/10.1038/s41598-023-34640-8 |
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author | Hong Yang Umer Hayat Shakil Shaiq Azeem Shahzad Tasawar Abbas Muhammad Naeem Sami Ullah Khan Taher Labidi Lioua Kolsi Manzoor Ahmad Zahid |
author_facet | Hong Yang Umer Hayat Shakil Shaiq Azeem Shahzad Tasawar Abbas Muhammad Naeem Sami Ullah Khan Taher Labidi Lioua Kolsi Manzoor Ahmad Zahid |
author_sort | Hong Yang |
collection | DOAJ |
description | Abstract Hybrid nanofluid are the modified class of nanofluids with extra high thermal performances and present different applications in automotive cooling, heat transfer devices, solar collectors, engine applications, fusion processes, machine cutting, chemical processes etc. This thermal research explores the heat transfer assessment due to hybrid nanofluid with of different shape features. The thermal inspections regarding the hybrid nanofluid model are justified with aluminium oxide and titanium nanoparticles. The base liquid properties are disclosed with ethylene glycol material. The novel impact of current model is the presentation of different shape features namely Platelets, blade and cylinder. Different thermal properties of utilized nanoparticles at various flow constraints are reported. The problem of hybrid nanofluid model is modified in view of slip mechanism, magnetic force and viscous dissipation. The heat transfer observations for decomposition of TiO2–Al2O3/C2H6O2 is assessed by using the convective boundary conditions. The shooting methodology is involved for finding the numerical observations of problem. Graphical impact of thermal parameters is observed for TiO2–Al2O3/C2H6O2 hybrid decomposition. The pronounced observations reveal that thermal rate enhanced for blade shaped titanium oxide-ethylene glycol decomposition. The wall shear force reduces for blade shaped titanium oxide nanoparticles. |
first_indexed | 2024-03-13T09:02:53Z |
format | Article |
id | doaj.art-a008676260254868ad7f20bd9a264e12 |
institution | Directory Open Access Journal |
issn | 2045-2322 |
language | English |
last_indexed | 2024-03-13T09:02:53Z |
publishDate | 2023-05-01 |
publisher | Nature Portfolio |
record_format | Article |
series | Scientific Reports |
spelling | doaj.art-a008676260254868ad7f20bd9a264e122023-05-28T11:14:33ZengNature PortfolioScientific Reports2045-23222023-05-0113111110.1038/s41598-023-34640-8Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape featuresHong Yang0Umer Hayat1Shakil Shaiq2Azeem Shahzad3Tasawar Abbas4Muhammad Naeem5Sami Ullah Khan6Taher Labidi7Lioua Kolsi8Manzoor Ahmad Zahid9School of Computer Science, Chengdu UniversityDepartment of Basic Sciences, University of Engineering and TechnologyDepartment of Mathematics, The Sahara UniversityDepartment of Basic Sciences, University of Engineering and TechnologyDepartment of Mathematics, University of WahDepartment of Mathematics, COMSATS University Islamabad Sahiwal Campus 57000, PakistanDepartment of Mathematics, Namal UniversityDepartment of Software Engineering, College of Computer Engineering and Sciences, Prince Sattam Bin Abdulaziz UniversityDepartment of Mechanical Engineering, College of Engineering, University of Ha’ilDepartment of Mathematics, COMSATS University Islamabad Sahiwal Campus 57000, PakistanAbstract Hybrid nanofluid are the modified class of nanofluids with extra high thermal performances and present different applications in automotive cooling, heat transfer devices, solar collectors, engine applications, fusion processes, machine cutting, chemical processes etc. This thermal research explores the heat transfer assessment due to hybrid nanofluid with of different shape features. The thermal inspections regarding the hybrid nanofluid model are justified with aluminium oxide and titanium nanoparticles. The base liquid properties are disclosed with ethylene glycol material. The novel impact of current model is the presentation of different shape features namely Platelets, blade and cylinder. Different thermal properties of utilized nanoparticles at various flow constraints are reported. The problem of hybrid nanofluid model is modified in view of slip mechanism, magnetic force and viscous dissipation. The heat transfer observations for decomposition of TiO2–Al2O3/C2H6O2 is assessed by using the convective boundary conditions. The shooting methodology is involved for finding the numerical observations of problem. Graphical impact of thermal parameters is observed for TiO2–Al2O3/C2H6O2 hybrid decomposition. The pronounced observations reveal that thermal rate enhanced for blade shaped titanium oxide-ethylene glycol decomposition. The wall shear force reduces for blade shaped titanium oxide nanoparticles.https://doi.org/10.1038/s41598-023-34640-8 |
spellingShingle | Hong Yang Umer Hayat Shakil Shaiq Azeem Shahzad Tasawar Abbas Muhammad Naeem Sami Ullah Khan Taher Labidi Lioua Kolsi Manzoor Ahmad Zahid Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features Scientific Reports |
title | Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features |
title_full | Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features |
title_fullStr | Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features |
title_full_unstemmed | Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features |
title_short | Thermal inspection for viscous dissipation slip flow of hybrid nanofluid (TiO2–Al2O3/C2H6O2) using cylinder, platelet and blade shape features |
title_sort | thermal inspection for viscous dissipation slip flow of hybrid nanofluid tio2 al2o3 c2h6o2 using cylinder platelet and blade shape features |
url | https://doi.org/10.1038/s41598-023-34640-8 |
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