Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet

This paper undertakes a numerical exploration into the dynamics of fluid flow and heat transfer within the stagnation region of a mixed convection scenario involving thermally stratified ternary hybrid nanofluid. The study incorporates the impact of a magnetohydrodynamic and velocity slip, while als...

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Published in:Case Studies in Thermal Engineering
Main Author: Jamrus F.N.; Waini I.; Khan U.; Ishak A.
Format: Article
Language:English
Published: Elsevier Ltd 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186270936&doi=10.1016%2fj.csite.2024.104161&partnerID=40&md5=fc5d470a713615abd08aa1cc17fd19fa
id 2-s2.0-85186270936
spelling 2-s2.0-85186270936
Jamrus F.N.; Waini I.; Khan U.; Ishak A.
Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
2024
Case Studies in Thermal Engineering
55

10.1016/j.csite.2024.104161
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186270936&doi=10.1016%2fj.csite.2024.104161&partnerID=40&md5=fc5d470a713615abd08aa1cc17fd19fa
This paper undertakes a numerical exploration into the dynamics of fluid flow and heat transfer within the stagnation region of a mixed convection scenario involving thermally stratified ternary hybrid nanofluid. The study incorporates the impact of a magnetohydrodynamic and velocity slip, while also considering a permeable sheet that can stretch or shrink. The equations governed the flow problem are transformed into similarity equations using a similarity transformation. Then the similarity equations are solved utilizing the built in solver (bvp4c) in MATLAB. This flow problem has two solutions, as expected. Following that, the outcomes of the stability analysis show the viability and physical robustness of the first solution. Additionally, the study identifies magnetic, suction, and volume fraction as parameters capable of delaying turbulence onset in the boundary layer. Moreover, the heat transmission of the ternary hybrid nanofluid is enhanced by an increased volume fraction. It is important to note that the reported results specifically pertain to the combination of alumina, copper, and titania nanoparticles. Different combinations of nanoparticles may exhibits unique properties related to both flow behaviour and heat transmission. © 2024 The Authors
Elsevier Ltd
2214157X
English
Article

author Jamrus F.N.; Waini I.; Khan U.; Ishak A.
spellingShingle Jamrus F.N.; Waini I.; Khan U.; Ishak A.
Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
author_facet Jamrus F.N.; Waini I.; Khan U.; Ishak A.
author_sort Jamrus F.N.; Waini I.; Khan U.; Ishak A.
title Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
title_short Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
title_full Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
title_fullStr Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
title_full_unstemmed Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
title_sort Effects of magnetohydrodynamics and velocity slip on mixed convective flow of thermally stratified ternary hybrid nanofluid over a stretching/shrinking sheet
publishDate 2024
container_title Case Studies in Thermal Engineering
container_volume 55
container_issue
doi_str_mv 10.1016/j.csite.2024.104161
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186270936&doi=10.1016%2fj.csite.2024.104161&partnerID=40&md5=fc5d470a713615abd08aa1cc17fd19fa
description This paper undertakes a numerical exploration into the dynamics of fluid flow and heat transfer within the stagnation region of a mixed convection scenario involving thermally stratified ternary hybrid nanofluid. The study incorporates the impact of a magnetohydrodynamic and velocity slip, while also considering a permeable sheet that can stretch or shrink. The equations governed the flow problem are transformed into similarity equations using a similarity transformation. Then the similarity equations are solved utilizing the built in solver (bvp4c) in MATLAB. This flow problem has two solutions, as expected. Following that, the outcomes of the stability analysis show the viability and physical robustness of the first solution. Additionally, the study identifies magnetic, suction, and volume fraction as parameters capable of delaying turbulence onset in the boundary layer. Moreover, the heat transmission of the ternary hybrid nanofluid is enhanced by an increased volume fraction. It is important to note that the reported results specifically pertain to the combination of alumina, copper, and titania nanoparticles. Different combinations of nanoparticles may exhibits unique properties related to both flow behaviour and heat transmission. © 2024 The Authors
publisher Elsevier Ltd
issn 2214157X
language English
format Article
accesstype
record_format scopus
collection Scopus
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