Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet

Hybrid nanofluids have emerged as advanced heat transfer materials for industrial applications. In this study, Alumina (Al₂O₃) and Copper (Cu) nanoparticles, dispersed in a Carboxymethyl Cellulose (CMC)-water-based fluid, are considered to form a non-Newtonian hybrid nanofluid with shear thinning be...

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Main Authors: Masyfu'ah, Mokhtar, Abdul Rahman, Mohd Kasim, Iskandar, Waini, Nur Syahidah, Nordin
Format: Article
Language:English
Published: IPMEDIA SDN BHD 2025
Subjects:
Online Access:https://umpir.ump.edu.my/id/eprint/45952/
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author Masyfu'ah, Mokhtar
Abdul Rahman, Mohd Kasim
Iskandar, Waini
Nur Syahidah, Nordin
author_facet Masyfu'ah, Mokhtar
Abdul Rahman, Mohd Kasim
Iskandar, Waini
Nur Syahidah, Nordin
author_sort Masyfu'ah, Mokhtar
building UMP Institutional Repository
collection Online Access
description Hybrid nanofluids have emerged as advanced heat transfer materials for industrial applications. In this study, Alumina (Al₂O₃) and Copper (Cu) nanoparticles, dispersed in a Carboxymethyl Cellulose (CMC)-water-based fluid, are considered to form a non-Newtonian hybrid nanofluid with shear thinning behaviour, chosen for their superior thermophysical properties, stability, and practical applicability in advanced thermal management systems. By incorporating the non-Newtonian behavior of the Williamson fluid model together with the synergistic effects of hybrid nanoparticles, this study achieves a more accurate representation of practical fluid flows in industrial and engineering applications. Through appropriate transformations, the governing equations are reduced to similarity equations, which are then resolved using MATLAB’s bvp4c solver. Model accuracy is verified by comparing the results with an existing model, demonstrating good agreement. This study explores the effects of several fluid parameters, including mixed convection, suction, nanoparticle concentration, and the Williamson parameter, on fluid flow. The results reveal that increased mixed convection and suction enhance heat transfer performance, whereas higher Williamson parameter values and nanoparticle concentrations reduce heat transfer. Overall, the findings provide significant insights into the behaviour of hybrid nanofluids in non-Newtonian flows and offer a theoretical foundation for their application in heat transfer enhancement strategies across diverse engineering systems.
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spelling ump-459522025-10-16T07:13:48Z https://umpir.ump.edu.my/id/eprint/45952/ Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet Masyfu'ah, Mokhtar Abdul Rahman, Mohd Kasim Iskandar, Waini Nur Syahidah, Nordin Q Science (General) QA Mathematics Hybrid nanofluids have emerged as advanced heat transfer materials for industrial applications. In this study, Alumina (Al₂O₃) and Copper (Cu) nanoparticles, dispersed in a Carboxymethyl Cellulose (CMC)-water-based fluid, are considered to form a non-Newtonian hybrid nanofluid with shear thinning behaviour, chosen for their superior thermophysical properties, stability, and practical applicability in advanced thermal management systems. By incorporating the non-Newtonian behavior of the Williamson fluid model together with the synergistic effects of hybrid nanoparticles, this study achieves a more accurate representation of practical fluid flows in industrial and engineering applications. Through appropriate transformations, the governing equations are reduced to similarity equations, which are then resolved using MATLAB’s bvp4c solver. Model accuracy is verified by comparing the results with an existing model, demonstrating good agreement. This study explores the effects of several fluid parameters, including mixed convection, suction, nanoparticle concentration, and the Williamson parameter, on fluid flow. The results reveal that increased mixed convection and suction enhance heat transfer performance, whereas higher Williamson parameter values and nanoparticle concentrations reduce heat transfer. Overall, the findings provide significant insights into the behaviour of hybrid nanofluids in non-Newtonian flows and offer a theoretical foundation for their application in heat transfer enhancement strategies across diverse engineering systems. IPMEDIA SDN BHD 2025-09 Article PeerReviewed pdf en cc_by_nc_4 https://umpir.ump.edu.my/id/eprint/45952/1/Mixed%20Convection%20Stagnation%20Point%20Flow%20of%20Williamson%20Hybrid%20Nanofluid%20over%20a%20Non-Linear%20Shrinking%20Sheet%20.pdf Masyfu'ah, Mokhtar and Abdul Rahman, Mohd Kasim and Iskandar, Waini and Nur Syahidah, Nordin (2025) Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet. Paperasia, 41 (5b). pp. 1-11. ISSN 0218-4540. (Published) https://doi.org/10.59953/paperasia.v41i5b.816
spellingShingle Q Science (General)
QA Mathematics
Masyfu'ah, Mokhtar
Abdul Rahman, Mohd Kasim
Iskandar, Waini
Nur Syahidah, Nordin
Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
title Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
title_full Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
title_fullStr Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
title_full_unstemmed Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
title_short Mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
title_sort mixed convection stagnation point flow of williamson hybrid nanofluid over a non-linear shrinking sheet
topic Q Science (General)
QA Mathematics
url https://umpir.ump.edu.my/id/eprint/45952/
https://umpir.ump.edu.my/id/eprint/45952/