MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation

Purpose: The purpose of this paper is to numerically investigate the hybrid nanofluid flow with the imposition of magnetohydrodynamic (MHD) and radiation effects alongside the convective boundary conditions over a permeable stretching/shrinking surface. Design/methodology/approach: The mathematical...

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Main Authors: Wahid, Nur Syahirah, Md Arifin, Norihan, Khashi'ie, Najiyah Safwa, Pop, Ioan, Bachok, Norfifah, Hafidzuddin, Ezad Hafidz
Format: Article
Published: Emerald Publishing 2022
Online Access:http://psasir.upm.edu.my/id/eprint/101859/
https://www.emerald.com/insight/content/doi/10.1108/HFF-04-2021-0263/full/html
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spelling my.upm.eprints.1018592023-07-12T01:02:25Z http://psasir.upm.edu.my/id/eprint/101859/ MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation Wahid, Nur Syahirah Md Arifin, Norihan Khashi'ie, Najiyah Safwa Pop, Ioan Bachok, Norfifah Hafidzuddin, Ezad Hafidz Purpose: The purpose of this paper is to numerically investigate the hybrid nanofluid flow with the imposition of magnetohydrodynamic (MHD) and radiation effects alongside the convective boundary conditions over a permeable stretching/shrinking surface. Design/methodology/approach: The mathematical model is formulated in the form of partial differential equations (PDEs) and are then transformed into the form of ordinary differential equations (ODEs) by using the similarity variables. The deriving ODEs are solved numerically by using the bvp4c solver in MATLAB software. Stability analysis also has been performed to determine the stable solution among the dual solutions obtain. For method validation purposes, a comparison of numerical results has been made with the previous studies. Findings: The flow and the heat transfer of the fluid at the boundary layer are described through the plot of the velocity profile, temperature profile, skin friction coefficient and local Nusselt number that are presented graphically. Dual solutions are obtained, but only the first solution is stable. For the realizable solution at the shrinking surface, the proliferation of nanoparticle volume fraction (copper) and magnetic (magnetohydrodynamics) parameters can impede the boundary layer separation. Also, Biot number could enhance the temperature profile and the heat transfer rate at the shrinking surface region. The incrementation of 0.1% of Biot number has enhanced the heat transfer rate by approximately 0.1% and the incrementation of 0.5% volume fraction for copper has reduced the heat transfer rate by approximately 0.17%. Originality/value: The presented model and numerical results are original and new. It can be used as a future reference for further investigation and related practical application. The main contribution of this investigation includes giving the initial prediction and providing the numerical data for the other researchers for their future reference regarding the impacts of nanoparticles volumetric concentration towards the main physical quantities of interest in the presence of magnetic and radiation parameters with the convective boundary conditions. Emerald Publishing 2022 Article PeerReviewed Wahid, Nur Syahirah and Md Arifin, Norihan and Khashi'ie, Najiyah Safwa and Pop, Ioan and Bachok, Norfifah and Hafidzuddin, Ezad Hafidz (2022) MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation. International Journal of Numerical Methods for Heat & Fluid Flow, 32 (5). 1706 - 1727. ISSN 0961-5539; ESSN: 1758-6585 https://www.emerald.com/insight/content/doi/10.1108/HFF-04-2021-0263/full/html 10.1108/HFF-04-2021-0263
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
description Purpose: The purpose of this paper is to numerically investigate the hybrid nanofluid flow with the imposition of magnetohydrodynamic (MHD) and radiation effects alongside the convective boundary conditions over a permeable stretching/shrinking surface. Design/methodology/approach: The mathematical model is formulated in the form of partial differential equations (PDEs) and are then transformed into the form of ordinary differential equations (ODEs) by using the similarity variables. The deriving ODEs are solved numerically by using the bvp4c solver in MATLAB software. Stability analysis also has been performed to determine the stable solution among the dual solutions obtain. For method validation purposes, a comparison of numerical results has been made with the previous studies. Findings: The flow and the heat transfer of the fluid at the boundary layer are described through the plot of the velocity profile, temperature profile, skin friction coefficient and local Nusselt number that are presented graphically. Dual solutions are obtained, but only the first solution is stable. For the realizable solution at the shrinking surface, the proliferation of nanoparticle volume fraction (copper) and magnetic (magnetohydrodynamics) parameters can impede the boundary layer separation. Also, Biot number could enhance the temperature profile and the heat transfer rate at the shrinking surface region. The incrementation of 0.1% of Biot number has enhanced the heat transfer rate by approximately 0.1% and the incrementation of 0.5% volume fraction for copper has reduced the heat transfer rate by approximately 0.17%. Originality/value: The presented model and numerical results are original and new. It can be used as a future reference for further investigation and related practical application. The main contribution of this investigation includes giving the initial prediction and providing the numerical data for the other researchers for their future reference regarding the impacts of nanoparticles volumetric concentration towards the main physical quantities of interest in the presence of magnetic and radiation parameters with the convective boundary conditions.
format Article
author Wahid, Nur Syahirah
Md Arifin, Norihan
Khashi'ie, Najiyah Safwa
Pop, Ioan
Bachok, Norfifah
Hafidzuddin, Ezad Hafidz
spellingShingle Wahid, Nur Syahirah
Md Arifin, Norihan
Khashi'ie, Najiyah Safwa
Pop, Ioan
Bachok, Norfifah
Hafidzuddin, Ezad Hafidz
MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
author_facet Wahid, Nur Syahirah
Md Arifin, Norihan
Khashi'ie, Najiyah Safwa
Pop, Ioan
Bachok, Norfifah
Hafidzuddin, Ezad Hafidz
author_sort Wahid, Nur Syahirah
title MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
title_short MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
title_full MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
title_fullStr MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
title_full_unstemmed MHD hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
title_sort mhd hybrid nanofluid flow with convective heat transfer over a permeable stretching/shrinking surface with radiation
publisher Emerald Publishing
publishDate 2022
url http://psasir.upm.edu.my/id/eprint/101859/
https://www.emerald.com/insight/content/doi/10.1108/HFF-04-2021-0263/full/html
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score 13.160551