The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model

The mixed convection flow and heat transfer of the hybrid nanofluid over a shrinking sheet are investigated. Molybdenum disulphide (MoS2) and graphene oxide (GO) are employed as two hybrid nanoparticles while engine oil (EO) as the base fluid is considered. In this study, the Reiner-Philippoff model...

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Published in:Journal of Advanced Research in Fluid Mechanics and Thermal Sciences
Main Author: Nordin N.S.; Kasim A.R.M.; Mokhtar M.; Waini I.
Format: Article
Language:English
Published: Semarak Ilmu Publishing 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85174538849&doi=10.37934%2farfmts.108.2.122139&partnerID=40&md5=8e3e6c8b8d819fae37f7936a370d785f
id 2-s2.0-85174538849
spelling 2-s2.0-85174538849
Nordin N.S.; Kasim A.R.M.; Mokhtar M.; Waini I.
The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
2023
Journal of Advanced Research in Fluid Mechanics and Thermal Sciences
108
2
10.37934/arfmts.108.2.122139
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85174538849&doi=10.37934%2farfmts.108.2.122139&partnerID=40&md5=8e3e6c8b8d819fae37f7936a370d785f
The mixed convection flow and heat transfer of the hybrid nanofluid over a shrinking sheet are investigated. Molybdenum disulphide (MoS2) and graphene oxide (GO) are employed as two hybrid nanoparticles while engine oil (EO) as the base fluid is considered. In this study, the Reiner-Philippoff model as one of non-Newtonian types is deliberated since it has the ability to function on three distinct types of fluids: viscous, shear thickening and shear thinning. The Reiner-Philippoff relation, the momentum and energy equations under Tiwari and Das model are all employed in the study. Influences from mass flux are also considered in the flow. Before computation using the bvp4c function in MATLAB, the respected equations are first converted into ordinary differential equation form using the similarity transformation. When the established and current models are discovered to be identical in a specific case, a direct comparative investigation is conducted to confirm the correctness of the current model. In addition, the present results are shown graphically and in tabular form. It is hypothesized that the presence of a hybrid nanofluid significantly affects the fluid characteristic and gives more satisfactory results than a single nanofluid. The skin friction coefficient and heat transfer rate of hybrid nanofluids are greater than the nanofluids. In terms of velocity and temperature profile, the reduction in velocity and the enhancement in temperature profile are caused by a rise in the Reiner-Philippoff parameter. The same outcome is also seen when the volume fraction of hybrid nanofluids increases. © 2023, Semarak Ilmu Publishing. All rights reserved.
Semarak Ilmu Publishing
22897879
English
Article
All Open Access; Hybrid Gold Open Access
author Nordin N.S.; Kasim A.R.M.; Mokhtar M.; Waini I.
spellingShingle Nordin N.S.; Kasim A.R.M.; Mokhtar M.; Waini I.
The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
author_facet Nordin N.S.; Kasim A.R.M.; Mokhtar M.; Waini I.
author_sort Nordin N.S.; Kasim A.R.M.; Mokhtar M.; Waini I.
title The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
title_short The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
title_full The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
title_fullStr The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
title_full_unstemmed The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
title_sort The Mixed of Hybrid Nanofluid GO-MoS2 /Engine Oil Over a Shrinking Sheet with Mass Flux Effect: Reiner-Philippoff Model
publishDate 2023
container_title Journal of Advanced Research in Fluid Mechanics and Thermal Sciences
container_volume 108
container_issue 2
doi_str_mv 10.37934/arfmts.108.2.122139
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85174538849&doi=10.37934%2farfmts.108.2.122139&partnerID=40&md5=8e3e6c8b8d819fae37f7936a370d785f
description The mixed convection flow and heat transfer of the hybrid nanofluid over a shrinking sheet are investigated. Molybdenum disulphide (MoS2) and graphene oxide (GO) are employed as two hybrid nanoparticles while engine oil (EO) as the base fluid is considered. In this study, the Reiner-Philippoff model as one of non-Newtonian types is deliberated since it has the ability to function on three distinct types of fluids: viscous, shear thickening and shear thinning. The Reiner-Philippoff relation, the momentum and energy equations under Tiwari and Das model are all employed in the study. Influences from mass flux are also considered in the flow. Before computation using the bvp4c function in MATLAB, the respected equations are first converted into ordinary differential equation form using the similarity transformation. When the established and current models are discovered to be identical in a specific case, a direct comparative investigation is conducted to confirm the correctness of the current model. In addition, the present results are shown graphically and in tabular form. It is hypothesized that the presence of a hybrid nanofluid significantly affects the fluid characteristic and gives more satisfactory results than a single nanofluid. The skin friction coefficient and heat transfer rate of hybrid nanofluids are greater than the nanofluids. In terms of velocity and temperature profile, the reduction in velocity and the enhancement in temperature profile are caused by a rise in the Reiner-Philippoff parameter. The same outcome is also seen when the volume fraction of hybrid nanofluids increases. © 2023, Semarak Ilmu Publishing. All rights reserved.
publisher Semarak Ilmu Publishing
issn 22897879
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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