Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface

Researchers have become attracted with ternary hybrid nanoparticles because of its ef-fectiveness in enhancing heat transfer and have gone on to further analyze the working fluid. This study is focusing on magneto-ternary nanofluid flow in a porous medium over a moving plate with Joule heating. The...

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Published in:Mathematical Modeling and Computing
Main Author: Anuar N.S.; Hussain B.N.; Asuki N.A.M.; Bachok N.
Format: Article
Language:English
Published: Lviv Polytechnic National University 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178925229&doi=10.23939%2fmmc2023.04.1250&partnerID=40&md5=6985e1c4ca57cd742de74232de531a60
id 2-s2.0-85178925229
spelling 2-s2.0-85178925229
Anuar N.S.; Hussain B.N.; Asuki N.A.M.; Bachok N.
Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
2023
Mathematical Modeling and Computing
10
4
10.23939/mmc2023.04.1250
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178925229&doi=10.23939%2fmmc2023.04.1250&partnerID=40&md5=6985e1c4ca57cd742de74232de531a60
Researchers have become attracted with ternary hybrid nanoparticles because of its ef-fectiveness in enhancing heat transfer and have gone on to further analyze the working fluid. This study is focusing on magneto-ternary nanofluid flow in a porous medium over a moving plate with Joule heating. The combination of TiO2, SiO2, and Al2O3 with wa-ter, H2O, as the based fluid is used for the analysis. Using similarity transformation, the complexity of partial differential equations (PDEs) is reduced into ordinary differential equation (ODE) systems, which are then numerically solved in MATLAB using the bvp4c function for various values of the governing parameters. The impacts of different dimen-sionless physical parameters on velocity, temperature as well as skin friction coefficient and local Nusselt number are reported in the form of graphs. Two solutions are achieved when the plate and free-stream are moving along mutually opposite directions. Further, local Nusselt number increases with permeability parameter and suction parameter. Also, increments in permeability parameter and the suction parameter lead to the delay in the boundary layer separation. Furthermore, by combining TiO2 with a volume percentage of SiO2-Al2O3/H2O, the heat transfer is enhanced. With an increase in nanoparticle volume fraction, the similarity solutions to exist decrease. © 2023 Lviv Polytechnic National University.
Lviv Polytechnic National University
23129794
English
Article
All Open Access; Bronze Open Access
author Anuar N.S.; Hussain B.N.; Asuki N.A.M.; Bachok N.
spellingShingle Anuar N.S.; Hussain B.N.; Asuki N.A.M.; Bachok N.
Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
author_facet Anuar N.S.; Hussain B.N.; Asuki N.A.M.; Bachok N.
author_sort Anuar N.S.; Hussain B.N.; Asuki N.A.M.; Bachok N.
title Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
title_short Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
title_full Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
title_fullStr Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
title_full_unstemmed Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
title_sort Heat transfer analysis on magneto–ternary nanofluid flow in a porous medium over a moving surface
publishDate 2023
container_title Mathematical Modeling and Computing
container_volume 10
container_issue 4
doi_str_mv 10.23939/mmc2023.04.1250
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178925229&doi=10.23939%2fmmc2023.04.1250&partnerID=40&md5=6985e1c4ca57cd742de74232de531a60
description Researchers have become attracted with ternary hybrid nanoparticles because of its ef-fectiveness in enhancing heat transfer and have gone on to further analyze the working fluid. This study is focusing on magneto-ternary nanofluid flow in a porous medium over a moving plate with Joule heating. The combination of TiO2, SiO2, and Al2O3 with wa-ter, H2O, as the based fluid is used for the analysis. Using similarity transformation, the complexity of partial differential equations (PDEs) is reduced into ordinary differential equation (ODE) systems, which are then numerically solved in MATLAB using the bvp4c function for various values of the governing parameters. The impacts of different dimen-sionless physical parameters on velocity, temperature as well as skin friction coefficient and local Nusselt number are reported in the form of graphs. Two solutions are achieved when the plate and free-stream are moving along mutually opposite directions. Further, local Nusselt number increases with permeability parameter and suction parameter. Also, increments in permeability parameter and the suction parameter lead to the delay in the boundary layer separation. Furthermore, by combining TiO2 with a volume percentage of SiO2-Al2O3/H2O, the heat transfer is enhanced. With an increase in nanoparticle volume fraction, the similarity solutions to exist decrease. © 2023 Lviv Polytechnic National University.
publisher Lviv Polytechnic National University
issn 23129794
language English
format Article
accesstype All Open Access; Bronze Open Access
record_format scopus
collection Scopus
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