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Radiative MHD hybrid-nanofluids flow over a permeable stretching surface with heat source/sink embedded in porous medium

Priyanka Agrawal (Department of Mathematics, Rajasthan University, Jaipur, India)
Praveen Kumar Dadheech (Department of Mathematics, Rajasthan University, Jaipur, India)
R.N. Jat (Department of Mathematics, Rajasthan University, Jaipur, India)
Dumitru Baleanu (Department of Mathematics, Cankaya Universitesi, Ankara, Turkey; Institute of Space Sciences, Magurele-Bucharest, Romania, Magurele-Bucharest, Romania and Department of Medical Research, China Medical University Hospital, China Medical University, Taichung, Taiwan)
Sunil Dutt Purohit (Department of HEAS (Mathematics), Rajasthan Technical University, Kota, India)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 19 July 2021

Issue publication date: 10 August 2021

102

Abstract

Purpose

The purpose of this paper is to study the comparative analysis between three hybrid nanofluids flow past a permeable stretching surface in a porous medium with thermal radiation. Uniform magnetic field is applied together with heat source and sink. Three set of different hybrid nanofluids with water as a base fluid having suspension of Copper-Aluminum Oxide (CuAl2O3), Silver-Aluminum Oxide (AgAl2O3) and Copper-Silver (CuAg) nanoparticles are considered. The Marangoni boundary condition is applied.

Design/methodology/approach

The governing model of the flow is solved by Runga–Kutta fourth-order method with shooting technique, using appropriate similarity transformations. Temperature and velocity field are explained by the figures for many flow pertinent parameters.

Findings

Almost same behavior is observed for all the parameters presented in this analysis for the three set of hybrid nanofluids. For increased mass transfer wall parameter ( fw) and Prandtl Number (Pr), heat transfer rate cuts down for all three sets of hybrid nanofluids, and reverse effect is seen for radiation parameter (R), and heat source/sink parameter ( δ).

Practical implications

The thermal conductivity of hybrid nanofluids is much larger than the conventional fluids; thus, heat transfer efficiency can be improved with these fluids and its implications can be seen in the fields of biomedical, microelectronics, thin-film stretching, lubrication, refrigeration, etc.

Originality/value

The current analysis is to optimize heat transfer of three different radiative hybrid nanofluids ( CuAl2O3/H2O, AgAl2O3/H2O and CuAg/H2O) over stretching surface after applying heat source/sink with Marangoni convection. To the best of the authors’ knowledge, this work is new and never published before.

Keywords

Acknowledgements

The authors would like to thank anonymous referees and editor for their useful critical comments and suggestions for improving the research paper.

Citation

Agrawal, P., Dadheech, P.K., Jat, R.N., Baleanu, D. and Purohit, S.D. (2021), "Radiative MHD hybrid-nanofluids flow over a permeable stretching surface with heat source/sink embedded in porous medium", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 31 No. 8, pp. 2818-2840. https://doi.org/10.1108/HFF-11-2020-0694

Publisher

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Emerald Publishing Limited

Copyright © 2021, Emerald Publishing Limited

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