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Insight into the dynamics of magneto-casson hybrid nanoliquid caused by a plate rotation

S. Das (Department of Mathematics, University of Gour Banga, Malda, India)
Asgar Ali (Department of Mathematics, Bajkul Milani Mahavidyalaya, Purba Medinipur, India)
R.N. Jana (Vidyasagar University, Midnapore, India)

World Journal of Engineering

ISSN: 1708-5284

Article publication date: 16 November 2020

Issue publication date: 7 January 2021

52

Abstract

Purpose

This paper aims to present the analytical investigation on an unsteady magneto-convective rotation of an electrically conducting non-Newtonian Casson hybrid nanoliquid past a vertical porous plate. The effects of thermal radiation, heat source/sink and hydrodynamic slip phenomenon are also taken into account. Ethylene glycol (EG) is adopted as a base Casson fluid. The Casson fluid model is accounted for to describe the rheological characteristics of non-Newtonian fluid. EG with copper and alumina nanoparticles is envisaged as a non-Newtonian Casson hybrid nanoliquid. The copper-alumina-ethylene glycol hybrid nanoliquid is considered as the regenerative coolant.

Design/methodology/approach

The perturbation method is implemented to develop the analytical solution of the modeled equations. Acquired solutions are used to calculate the shear stresses and the rate of heat transfer in terms of amplitudes and phase angles. Numerical results are figured out and tabled to inspect the physical insights of various emerging parameters on the pertinent flow characteristics.

Findings

This exploration discloses that the velocity profiles are strongly diminished by the slip parameter. Centrifugal and Coriolis forces caused by the plate rotation are found to significantly change the entire flow regime. The supplementation of nanoparticles is to lessen the amplitude of the heat transfer rate. A comparative study is carried out to understand the improvement of heat transfer characteristics of Casson hybrid nanoliquid and Casson nanoliquid. However, the Casson hybrid nanoliquid exhibits a lower rate of heat transfer than the usual Casson nanoliquid.

Practical implications

This proposed model would be pertinent in oceanography, meteorology, atmospheric science, power engineering, power and propulsion generation, solar energy transformation, thermoelectric and sensing material processing, tumbler in polymer manufacturing, etc. Motivated by such practical implications, the proposed study has been unfolded.

Originality/value

The novelty of this paper is to examine the simultaneous effects of the magnetic field, Coriolis force, suction/injection, slip condition and thermal radiation on non-Newtonian Casson hybrid nanoliquid flow past an oscillating vertical plate subject to periodically heating in a rotating frame of reference. A numerical comparison is also made with the existing published results under some limiting cases and it is found that the results are in good agreement with them. An in-depth review of the literature and the author’s best understanding find that such aspects of the problem have so far remained unexplored.

Keywords

Acknowledgements

The authors would like to express their gratitude to the anonymous reviewers for his/her valued comments and suggestions to improve the quality of the paper.

Citation

Das, S., Ali, A. and Jana, R.N. (2021), "Insight into the dynamics of magneto-casson hybrid nanoliquid caused by a plate rotation", World Journal of Engineering, Vol. 18 No. 1, pp. 66-84. https://doi.org/10.1108/WJE-07-2020-0261

Publisher

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Emerald Publishing Limited

Copyright © 2020, Emerald Publishing Limited

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