On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating

The notable progress in contemporary engineering technology has prompted a greater emphasis on curved surfaces, due to their wide-ranging utilization in transportation, industrial domains, and electronics. However, additional research is necessary to broaden the scope of applications involving curve...

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Published in:Journal of Advanced Research in Numerical Heat Transfer
Main Author: Anuar N.S.; Abdul Ghani N.L.; Liyana Aladdin N.A.; Pop I.
Format: Article
Language:English
Published: Penerbit Akademia Baru 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186876268&doi=10.37934%2farnht.14.1.91103&partnerID=40&md5=c72b0de1b9bfa55f2c7e3ec090aee6b4
id 2-s2.0-85186876268
spelling 2-s2.0-85186876268
Anuar N.S.; Abdul Ghani N.L.; Liyana Aladdin N.A.; Pop I.
On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
2023
Journal of Advanced Research in Numerical Heat Transfer
14
1
10.37934/arnht.14.1.91103
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186876268&doi=10.37934%2farnht.14.1.91103&partnerID=40&md5=c72b0de1b9bfa55f2c7e3ec090aee6b4
The notable progress in contemporary engineering technology has prompted a greater emphasis on curved surfaces, due to their wide-ranging utilization in transportation, industrial domains, and electronics. However, additional research is necessary to broaden the scope of applications involving curved surfaces. This study explores the unsteady magnetohydrodynamic (MHD) Copper-Alumina/water hybrid nanofluid flow through a permeable curved stretching/shrinking surface with Newtonian heating applied. Due to the curved nature of the geometry, the present problem is modeled using curvilinear coordinates. The addition of Newtonian heating is due to its vital role in the cooling and heating process for industrial purposes. The partial differential equations (PDEs) of the fluid flow will be reduced through a similarity transformation to ordinary differential equations (ODEs). A numerical solution is obtained by resolving the equations of continuity, momentum, and energy using the bvp4c solver in MATLAB. Furthermore, a comprehensive graphical analysis is conducted to examine the impacts of various physical parameters on the velocity and temperature profiles as well as Local Nusselt number and skin friction. These include the parameters on suction, magnetic, Newtonian heating, nanoparticle volume fraction, and stretch/shrink parameters. By systematically varying these parameters, a dual solution was noticed on the graphs while observing their influence on the flow and heat transfer characteristics. The results show that the range of solutions has expanded with an increase in copper volume fraction and magnetic parameters. A shrinking sheet exhibits greater skin friction when the value of copper and magnetic parameters is increased. In the meantime, the stretching sheet portrayed an opposite trend. The local Nusselt number is enhanced with the strengthened magnetic values and Newtonian heating parameters. Besides, the presence of suction is also responsible for a noteworthy decrease in the rate of heat transfer. © 2023, Penerbit Akademia Baru. All rights reserved.
Penerbit Akademia Baru
27350142
English
Article
All Open Access; Hybrid Gold Open Access
author Anuar N.S.; Abdul Ghani N.L.; Liyana Aladdin N.A.; Pop I.
spellingShingle Anuar N.S.; Abdul Ghani N.L.; Liyana Aladdin N.A.; Pop I.
On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
author_facet Anuar N.S.; Abdul Ghani N.L.; Liyana Aladdin N.A.; Pop I.
author_sort Anuar N.S.; Abdul Ghani N.L.; Liyana Aladdin N.A.; Pop I.
title On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
title_short On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
title_full On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
title_fullStr On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
title_full_unstemmed On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
title_sort On the Duality of Unsteady MHD Al2O3-Cu/Water Hybrid Nanofluid Flow over a Stretching/Shrinking Curved Surface with Newtonian Heating
publishDate 2023
container_title Journal of Advanced Research in Numerical Heat Transfer
container_volume 14
container_issue 1
doi_str_mv 10.37934/arnht.14.1.91103
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186876268&doi=10.37934%2farnht.14.1.91103&partnerID=40&md5=c72b0de1b9bfa55f2c7e3ec090aee6b4
description The notable progress in contemporary engineering technology has prompted a greater emphasis on curved surfaces, due to their wide-ranging utilization in transportation, industrial domains, and electronics. However, additional research is necessary to broaden the scope of applications involving curved surfaces. This study explores the unsteady magnetohydrodynamic (MHD) Copper-Alumina/water hybrid nanofluid flow through a permeable curved stretching/shrinking surface with Newtonian heating applied. Due to the curved nature of the geometry, the present problem is modeled using curvilinear coordinates. The addition of Newtonian heating is due to its vital role in the cooling and heating process for industrial purposes. The partial differential equations (PDEs) of the fluid flow will be reduced through a similarity transformation to ordinary differential equations (ODEs). A numerical solution is obtained by resolving the equations of continuity, momentum, and energy using the bvp4c solver in MATLAB. Furthermore, a comprehensive graphical analysis is conducted to examine the impacts of various physical parameters on the velocity and temperature profiles as well as Local Nusselt number and skin friction. These include the parameters on suction, magnetic, Newtonian heating, nanoparticle volume fraction, and stretch/shrink parameters. By systematically varying these parameters, a dual solution was noticed on the graphs while observing their influence on the flow and heat transfer characteristics. The results show that the range of solutions has expanded with an increase in copper volume fraction and magnetic parameters. A shrinking sheet exhibits greater skin friction when the value of copper and magnetic parameters is increased. In the meantime, the stretching sheet portrayed an opposite trend. The local Nusselt number is enhanced with the strengthened magnetic values and Newtonian heating parameters. Besides, the presence of suction is also responsible for a noteworthy decrease in the rate of heat transfer. © 2023, Penerbit Akademia Baru. All rights reserved.
publisher Penerbit Akademia Baru
issn 27350142
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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