Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions

This study addresses the consequences of thermal radiation with slip boundary conditions and a uniform magnetic field on a steady 2D flow of trihybrid nanofluids over a spinning disc. The trihybrid nanocomposites are synthesized by the dispersion of aluminum oxide (Al2O3), zirconium dioxide (ZrO2),...

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Main Authors: Saad Alshahrani, N. Ameer Ahammad, Muhammad Bilal, Mohamed E. Ghoneim, Aatif Ali, Mansour F. Yassen, Elsayed Tag-Eldin
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-08-01
Series:Frontiers in Energy Research
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fenrg.2022.967307/full
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author Saad Alshahrani
N. Ameer Ahammad
Muhammad Bilal
Mohamed E. Ghoneim
Mohamed E. Ghoneim
Aatif Ali
Mansour F. Yassen
Mansour F. Yassen
Elsayed Tag-Eldin
author_facet Saad Alshahrani
N. Ameer Ahammad
Muhammad Bilal
Mohamed E. Ghoneim
Mohamed E. Ghoneim
Aatif Ali
Mansour F. Yassen
Mansour F. Yassen
Elsayed Tag-Eldin
author_sort Saad Alshahrani
collection DOAJ
description This study addresses the consequences of thermal radiation with slip boundary conditions and a uniform magnetic field on a steady 2D flow of trihybrid nanofluids over a spinning disc. The trihybrid nanocomposites are synthesized by the dispersion of aluminum oxide (Al2O3), zirconium dioxide (ZrO2), and carbon nanotubes (CNTs) in water. The phenomena are characterized as a nonlinear system of PDEs. Using resemblance replacement, the modeled equations are simplified to a nondimensional set of ODEs. The parametric continuation method has been used to simulate the resulting sets of nonlinear differential equations. Figures and tables depict the effects of physical constraints on energy and velocity profiles. According to this study, the slip coefficient enormously decreases the velocity field. For larger approximations of thermal radiation characteristics and heat source term boosts the thermal profile. This proposed model will assist in the field of meteorology, atmospheric studies, biological technology, power generation, automotive manufacturing, renewable power conversions, and detecting microchips. In regard to such kinds of practical applications, the proposed study is being conducted. This study is unique due to slip conditions and ternary fluid, and it could be used by other scholars to acquire further information about nanofluid thermal exchanger performance and stability.
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spelling doaj.art-0720c0e0586847c798192af3feba39d62022-12-22T03:59:36ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2022-08-011010.3389/fenrg.2022.967307967307Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditionsSaad Alshahrani0N. Ameer Ahammad1Muhammad Bilal2Mohamed E. Ghoneim3Mohamed E. Ghoneim4Aatif Ali5Mansour F. Yassen6Mansour F. Yassen7Elsayed Tag-Eldin8Department of Mechanical Engineering, College of Engineering, King Khalid University, Abha, Saudi ArabiaDepartment of Mathematics, Faculty of Science, University of Tabuk, Tabuk, Saudi ArabiaDepartment of Mathematics, City University of Science and Information Technology, Peshawar, PakistanDepartment of Mathematical Sciences, Faculty of Applied Science, Umm Al-Qura University, Makkah, Saudi ArabiaFaculty of Computers and Artificial Intelligence, Damietta University, Damietta, EgyptDepartment of Mathematics, Abdul Wali Khan University Mardan, Mardan, Khyber Pakhtunkhwa, PakistanDepartment 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, New Damietta, Damietta, EgyptFaculty of Engineering and Technology, Future University in Egypt, New Cairo, EgyptThis study addresses the consequences of thermal radiation with slip boundary conditions and a uniform magnetic field on a steady 2D flow of trihybrid nanofluids over a spinning disc. The trihybrid nanocomposites are synthesized by the dispersion of aluminum oxide (Al2O3), zirconium dioxide (ZrO2), and carbon nanotubes (CNTs) in water. The phenomena are characterized as a nonlinear system of PDEs. Using resemblance replacement, the modeled equations are simplified to a nondimensional set of ODEs. The parametric continuation method has been used to simulate the resulting sets of nonlinear differential equations. Figures and tables depict the effects of physical constraints on energy and velocity profiles. According to this study, the slip coefficient enormously decreases the velocity field. For larger approximations of thermal radiation characteristics and heat source term boosts the thermal profile. This proposed model will assist in the field of meteorology, atmospheric studies, biological technology, power generation, automotive manufacturing, renewable power conversions, and detecting microchips. In regard to such kinds of practical applications, the proposed study is being conducted. This study is unique due to slip conditions and ternary fluid, and it could be used by other scholars to acquire further information about nanofluid thermal exchanger performance and stability.https://www.frontiersin.org/articles/10.3389/fenrg.2022.967307/fullslip conditionsthermal radiationheat generating sourcecomputational approachternary nanofluidrotating disc
spellingShingle Saad Alshahrani
N. Ameer Ahammad
Muhammad Bilal
Mohamed E. Ghoneim
Mohamed E. Ghoneim
Aatif Ali
Mansour F. Yassen
Mansour F. Yassen
Elsayed Tag-Eldin
Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
Frontiers in Energy Research
slip conditions
thermal radiation
heat generating source
computational approach
ternary nanofluid
rotating disc
title Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
title_full Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
title_fullStr Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
title_full_unstemmed Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
title_short Numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
title_sort numerical simulation of ternary nanofluid flow with multiple slip and thermal jump conditions
topic slip conditions
thermal radiation
heat generating source
computational approach
ternary nanofluid
rotating disc
url https://www.frontiersin.org/articles/10.3389/fenrg.2022.967307/full
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