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

Nur Syahirah Wahid (Department of Mathematics, Faculty of Science, Universiti Putra Malaysia, Serdang, Selangor, Malaysia)
Norihan Md Arifin (Department of Mathematics, Faculty of Science and Institute for Mathematical Research, Universiti Putra Malaysia, Serdang, Selangor, Malaysia)
Najiyah Safwa Khashi'ie (Fakulti Teknologi Kejuruteraan Mekanikal dan Pembuatan, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, Durian Tunggal, Melaka, Malaysia)
Ioan Pop (Department of Mathematics, Babeş-Bolyai University, Cluj-Napoca, Romania)
Norfifah Bachok (Department of Mathematics, Faculty of Science and Institute for Mathematical Research, Universiti Putra Malaysia, Serdang, Selangor, Malaysia)
Ezad Hafidz Hafidzuddin (Centre of Foundation Studies for Agricultural Science, Universiti Putra Malaysia, Serdang, Selangor, Malaysia)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 4 August 2021

Issue publication date: 19 April 2022

137

Abstract

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.

Keywords

Acknowledgements

The authors appreciatively acknowledge Universiti Putra Malaysia, Universiti Teknikal Malaysia Melaka, and Ministry of Higher Education Malaysia for the support given through the Fundamental Research Grant Scheme (KPTFRGS/1/2019/STG06/IPM/02/3, Vot 5540309).

Citation

Wahid, N.S., Arifin, N.M., Khashi'ie, N.S., Pop, I., Bachok, N. and Hafidzuddin, E.H. (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, Vol. 32 No. 5, pp. 1706-1727. https://doi.org/10.1108/HFF-04-2021-0263

Publisher

:

Emerald Publishing Limited

Copyright © 2021, Emerald Publishing Limited

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