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Free convection heat transfer of MgO-MWCNTs/EG hybrid nanofluid in a porous complex shaped cavity with MHD and thermal radiation effects

Mohammad Ghalambaz (School of Aeronautic Science and Engineering, Beihang University, Beijing, PR China)
Mahmoud Sabour (Young Researchers and Elite Club, Ahvaz Branch, Islamic Azad University, Ahvaz, Iran)
Ioan Pop (Faculty of Mathematics and Computer Science, Babeş-Bolyai University, Cluj-Napoca, Romania)
Dongsheng Wen (School of Aeronautic Science and Engineering, Beihang University, Beijing, China and School of Chemical and Process Engineering, University of Leeds, Leeds, UK)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 19 July 2019

Issue publication date: 17 October 2019

302

Abstract

Purpose

The present study aims to address the flow and heat transfer of MgO-MWCNTs/EG hybrid nanofluid in a complex shape enclosure filled with a porous medium. The enclosure is subject to a uniform inclined magnetic field and radiation effects. The effect of the presence of a variable magnetic field on the natural convection heat transfer of hybrid nanofluids in a complex shape cavity is studied for the first time. The geometry of the cavity is an annular space with an isothermal wavy outer cold wall. Two types of the porous medium, glass ball and aluminum metal foam, are adopted for the porous space. The governing equations for mass, momentum and heat transfer of the hybrid nanofluid are introduced and transformed into non-dimensional form. The actual available thermal conductivity and dynamic viscosity data for the hybrid nanofluid are directly used for thermophysical properties of the hybrid nanofluid.

Design/methodology/approach

The governing equations for mass, momentum and heat transfer of hybrid nanofluid are introduced and transformed into non-dimensional form. The thermal conductivity and dynamic viscosity of the nanofluid are directly used from the experimental results available in the literature. The finite element method is used to solve the governing equations. Grid check procedure and validations were performed.

Findings

The effect of Hartmann number, Rayleigh number, Darcy number, the shape of the cavity and the type of porous medium on the thermal performance of the cavity are studied. The outcomes show that using the composite nanoparticles boosts the convective heat transfer. However, the rise of the volume fraction of nanoparticles would reduce the overall enhancement. Considering a convective dominant regime of natural convection flow with Rayleigh number of 107, the maximum enhancement ratio (Nusselt number ratio compared to the pure fluid) for the case of glass ball is about 1.17 and for the case of aluminum metal foam is about 1.15 when the volume fraction of hybrid nanoparticles is minimum as 0.2 per cent.

Originality/value

The effect of the presence of a variable magnetic field on the natural convection heat transfer of a new type of hybrid nanofluids, MgO-MWCNTs/EG, in a complex shape cavity is studied for the first time. The results of this paper are new and original with many practical applications of hybrid nanofluids in the modern industry.

Keywords

Acknowledgements

This work of Mohammad Ghalambaz was supported by the STAR Institute – UBB, Cluj-Napoca, Romania, External Fellowship program, and the work by Ioan Pop has been supported from the Grant PN-III-P4-IDPCE-2016-0036, UEFISCDI, Romanian Ministry of Sciences.

The work was supported by National Science Foundation of China (No. 51876006), National Numerical Windtunnel (Grant 2018-ZT3A05) and 111 project (B18002). The authors wish also to express their thanks to the very competent Reviewers for the very good comments and suggestions.

Citation

Ghalambaz, M., Sabour, M., Pop, I. and Wen, D. (2019), "Free convection heat transfer of MgO-MWCNTs/EG hybrid nanofluid in a porous complex shaped cavity with MHD and thermal radiation effects", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 29 No. 11, pp. 4349-4376. https://doi.org/10.1108/HFF-04-2019-0339

Publisher

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Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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