MHD stagnation point flow on a shrinking surface with hybrid nanoparticles and melting phenomenon effects
International Journal of Numerical Methods for Heat & Fluid Flow
ISSN: 0961-5539
Article publication date: 5 August 2021
Issue publication date: 19 April 2022
Abstract
Purpose
This study aims to explore the stagnation flow over a shrinking surface in a hybrid nanofluid consists of Al2O3 and Cu nanoparticles. Here, the flow is subjected to the magnetohydrodynamic (MHD) and the melting phenomenon effects.
Design/methodology/approach
The similarity variables are used to gain the similarity equations. These equations are solved via the bvp4c solver. The effects of several physical parameters on the flow and the thermal characteristics of the hybrid nanofluid are analysed and discussed. Later, the temporal stability analysis is used to determine the stability of the dual solutions obtained as time evolves.
Findings
Results show that two solutions are found for the limited range of the stretching/shrinking parameter
Originality/value
This paper considers the MHD stagnation point flow of a hybrid nanofluid over a shrinking surface with the melting phenomenon effects. Most importantly, it is shown that there exist dual solutions within a specific range of the physical parameters. Besides, the temporal stability of the solutions is also reported in this study. The finding can contribute to foresee the flow and thermal behaviours in industrial applications. Also, the suitable values of parameters can be determined to avoid misjudgement in flow and heat transfer analysis.
Keywords
Acknowledgements
The financial supports received from the Ministry of Education Malaysia (Project Code: FRGS/1/2019/STG06/UKM/01/4) and the Universiti Teknikal Malaysia Melaka are gratefully acknowledged.
Conflict of interest: There is no conflict of interest between the authors.
Citation
Pop, I., Waini, I. and Ishak, A. (2022), "MHD stagnation point flow on a shrinking surface with hybrid nanoparticles and melting phenomenon effects", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 32 No. 5, pp. 1728-1741. https://doi.org/10.1108/HFF-06-2021-0378
Publisher
:Emerald Publishing Limited
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