Stability analysis for heat transfer flow in micropolar hybrid nanofluids

Objective: hybrid nanofluids have superior thermal efficiency and physical durability in contrast to regular nanofluids. The stagnation point flow of MHD micropolar hybrid nanofluids over a deformable sheet with viscous dissipation is investigated. Methodology: the controlling partial differential e...

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Published in:Nanoscale Advances
Main Author: Adilla Norzawary N.H.; Soid S.K.; Ishak A.; Anuar Mohamed M.K.; Khan U.; Sherif E.M.; Pop I.
Format: Article
Language:English
Published: Royal Society of Chemistry 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173639530&doi=10.1039%2fd3na00675a&partnerID=40&md5=b8e7658b42562b1f7c5b8f78c60d771a
id 2-s2.0-85173639530
spelling 2-s2.0-85173639530
Adilla Norzawary N.H.; Soid S.K.; Ishak A.; Anuar Mohamed M.K.; Khan U.; Sherif E.M.; Pop I.
Stability analysis for heat transfer flow in micropolar hybrid nanofluids
2023
Nanoscale Advances
5
20
10.1039/d3na00675a
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173639530&doi=10.1039%2fd3na00675a&partnerID=40&md5=b8e7658b42562b1f7c5b8f78c60d771a
Objective: hybrid nanofluids have superior thermal efficiency and physical durability in contrast to regular nanofluids. The stagnation point flow of MHD micropolar hybrid nanofluids over a deformable sheet with viscous dissipation is investigated. Methodology: the controlling partial differential equations are converted to nonlinear ordinary differential equations using the transmuted similarity, and are subsequently solved using the bvp4c solver in MATLAB. The hybrid nanofluids consist of aluminum and copper nanoparticles, dispersed in a base fluid of water. Results: multiple solutions are obtained in the given problem for the case of shrinking as well as for the stretching sheet due to the variation in several influential parameters. Non-unique solutions, generally, exist for the case of shrinking sheets. In addition, the first branch solution is physically stable and acceptable according to the stability analysis. The friction factor is higher for the branch of the first solution and lower in the second branch due to the higher magnetic parameters, while the opposite behavior is seen in the case of the local heat transfer rate. Originality: the novelty of this model is that it finds multiple solutions in the presence of Cu and Al2O3 nanoparticles and also performs the stability analysis. In general, non-unique solutions exist for the phenomenon of shrinking sheets. © 2023 RSC.
Royal Society of Chemistry
25160230
English
Article
All Open Access; Gold Open Access
author Adilla Norzawary N.H.; Soid S.K.; Ishak A.; Anuar Mohamed M.K.; Khan U.; Sherif E.M.; Pop I.
spellingShingle Adilla Norzawary N.H.; Soid S.K.; Ishak A.; Anuar Mohamed M.K.; Khan U.; Sherif E.M.; Pop I.
Stability analysis for heat transfer flow in micropolar hybrid nanofluids
author_facet Adilla Norzawary N.H.; Soid S.K.; Ishak A.; Anuar Mohamed M.K.; Khan U.; Sherif E.M.; Pop I.
author_sort Adilla Norzawary N.H.; Soid S.K.; Ishak A.; Anuar Mohamed M.K.; Khan U.; Sherif E.M.; Pop I.
title Stability analysis for heat transfer flow in micropolar hybrid nanofluids
title_short Stability analysis for heat transfer flow in micropolar hybrid nanofluids
title_full Stability analysis for heat transfer flow in micropolar hybrid nanofluids
title_fullStr Stability analysis for heat transfer flow in micropolar hybrid nanofluids
title_full_unstemmed Stability analysis for heat transfer flow in micropolar hybrid nanofluids
title_sort Stability analysis for heat transfer flow in micropolar hybrid nanofluids
publishDate 2023
container_title Nanoscale Advances
container_volume 5
container_issue 20
doi_str_mv 10.1039/d3na00675a
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85173639530&doi=10.1039%2fd3na00675a&partnerID=40&md5=b8e7658b42562b1f7c5b8f78c60d771a
description Objective: hybrid nanofluids have superior thermal efficiency and physical durability in contrast to regular nanofluids. The stagnation point flow of MHD micropolar hybrid nanofluids over a deformable sheet with viscous dissipation is investigated. Methodology: the controlling partial differential equations are converted to nonlinear ordinary differential equations using the transmuted similarity, and are subsequently solved using the bvp4c solver in MATLAB. The hybrid nanofluids consist of aluminum and copper nanoparticles, dispersed in a base fluid of water. Results: multiple solutions are obtained in the given problem for the case of shrinking as well as for the stretching sheet due to the variation in several influential parameters. Non-unique solutions, generally, exist for the case of shrinking sheets. In addition, the first branch solution is physically stable and acceptable according to the stability analysis. The friction factor is higher for the branch of the first solution and lower in the second branch due to the higher magnetic parameters, while the opposite behavior is seen in the case of the local heat transfer rate. Originality: the novelty of this model is that it finds multiple solutions in the presence of Cu and Al2O3 nanoparticles and also performs the stability analysis. In general, non-unique solutions exist for the phenomenon of shrinking sheets. © 2023 RSC.
publisher Royal Society of Chemistry
issn 25160230
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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