The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space
Due to their accelerated rate of heat transfer, nanofluids are of immense interest. This work analyzes an innovative concept of hybrid nanoemulsion with an optimized design under the chemical radiative flow and its thermophysical properties. We are able to achieve great aspects of the flow with the...
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Frontiers Media S.A.
2022-10-01
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Series: | Frontiers in Energy Research |
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Online Access: | https://www.frontiersin.org/articles/10.3389/fenrg.2022.970293/full |
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author | Taza Gul Safyan Mukhtar Wajdi Alghamdi Elsayed Tag Eldin Mansour F. Yassen Mansour F. Yassen Kamel Guedri |
author_facet | Taza Gul Safyan Mukhtar Wajdi Alghamdi Elsayed Tag Eldin Mansour F. Yassen Mansour F. Yassen Kamel Guedri |
author_sort | Taza Gul |
collection | DOAJ |
description | Due to their accelerated rate of heat transfer, nanofluids are of immense interest. This work analyzes an innovative concept of hybrid nanoemulsion with an optimized design under the chemical radiative flow and its thermophysical properties. We are able to achieve great aspects of the flow with the assistance of the sheet’s permeable texture and inclined surface. Furthermore, the effects of thermal conductivity mix convection, chemical reaction, and thermal radiations on velocity, temperature, and concentration fields are also investigated. After converting the fundamental equations to ordinary differential equations with the use of similarity transportation, the problem is then solved analytically with the HAM technique. To investigate key attributes and parameters, a hybrid nanofluid with Ag and Al2O3 nanoparticles as well as Al2O3 for conventional nanofluids with the base solvent water is taken. To illustrate the effects of chemical radiative and mix convection on the thin-film flow, numerous graphs, charts, and tables are shown. Calculations and reviews are performed for reduced friction coefficient, heat, and mass transportation. According to this study, hybrid nanofluids have a higher heat-transfer rate than nanofluids when exposed to thermal radiation and at the appropriate surface angle of inclination. Due to ϕAl2O3, ϕAg,S, Rd, the temperature increases, but velocity has the opposite effect. This investigation’s innovative findings will promote the study of condensed nanostructures and nanomaterials. |
first_indexed | 2024-04-13T23:27:02Z |
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issn | 2296-598X |
language | English |
last_indexed | 2024-04-13T23:27:02Z |
publishDate | 2022-10-01 |
publisher | Frontiers Media S.A. |
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series | Frontiers in Energy Research |
spelling | doaj.art-5676eae4eb1e493689667d16fd9bcfc72022-12-22T02:25:02ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2022-10-011010.3389/fenrg.2022.970293970293The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous spaceTaza Gul0Safyan Mukhtar1Wajdi Alghamdi2Elsayed Tag Eldin3Mansour F. Yassen4Mansour F. Yassen5Kamel Guedri6Department of Mathematics, City University of Science and Information Technology, Peshawar, PakistanDepartment of Basic Sciences, Deanship of Preparatory Year, King Faisal University, Hafuf, Al Ahsa, Saudi ArabiaDepartment of Information Technology, Faculty of Computing and Information Technology, King Abdulaziz University, Jeddah, Saudi ArabiaFaculty of Engineering and Technology, Future University in Egypt New Cairo, Cairo, EgyptDepartment of Mathematics, College of Science and Humanities in Al-Aflaj, Prince Sattam Bin Abdulaziz University, Al-Aflaj, Saudi ArabiaDepartment of Mathematics, Faculty of Science, Damietta University, Damietta, New Damietta, EgyptMechanical Engineering Department, College of Engineering and Islamic Architecture, Umm Al-Qura University, Makkah, Saudi ArabiaDue to their accelerated rate of heat transfer, nanofluids are of immense interest. This work analyzes an innovative concept of hybrid nanoemulsion with an optimized design under the chemical radiative flow and its thermophysical properties. We are able to achieve great aspects of the flow with the assistance of the sheet’s permeable texture and inclined surface. Furthermore, the effects of thermal conductivity mix convection, chemical reaction, and thermal radiations on velocity, temperature, and concentration fields are also investigated. After converting the fundamental equations to ordinary differential equations with the use of similarity transportation, the problem is then solved analytically with the HAM technique. To investigate key attributes and parameters, a hybrid nanofluid with Ag and Al2O3 nanoparticles as well as Al2O3 for conventional nanofluids with the base solvent water is taken. To illustrate the effects of chemical radiative and mix convection on the thin-film flow, numerous graphs, charts, and tables are shown. Calculations and reviews are performed for reduced friction coefficient, heat, and mass transportation. According to this study, hybrid nanofluids have a higher heat-transfer rate than nanofluids when exposed to thermal radiation and at the appropriate surface angle of inclination. Due to ϕAl2O3, ϕAg,S, Rd, the temperature increases, but velocity has the opposite effect. This investigation’s innovative findings will promote the study of condensed nanostructures and nanomaterials.https://www.frontiersin.org/articles/10.3389/fenrg.2022.970293/fullMaxwell hybrid nanofluidthin filmheat and mass transferinclined stretching sheetMgO and TiO2 |
spellingShingle | Taza Gul Safyan Mukhtar Wajdi Alghamdi Elsayed Tag Eldin Mansour F. Yassen Mansour F. Yassen Kamel Guedri The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space Frontiers in Energy Research Maxwell hybrid nanofluid thin film heat and mass transfer inclined stretching sheet MgO and TiO2 |
title | The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space |
title_full | The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space |
title_fullStr | The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space |
title_full_unstemmed | The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space |
title_short | The radiative flow of the thin-film Maxwell hybrid nanofluids on an inclined plane in a porous space |
title_sort | radiative flow of the thin film maxwell hybrid nanofluids on an inclined plane in a porous space |
topic | Maxwell hybrid nanofluid thin film heat and mass transfer inclined stretching sheet MgO and TiO2 |
url | https://www.frontiersin.org/articles/10.3389/fenrg.2022.970293/full |
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