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Activation energy impact on radiated magneto-Sisko nanofluid flow over a stretching and slipping cylinder: entropy analysis

S. Sarkar (Department of Mathematics, University of Gour Banga, Malda, India)
R.N. Jana (Department of Applied Mathematics, Vidyasagar University, Midnapore, India)
S. Das (Department of Mathematics, University of Gour Banga, Malda, India)

Multidiscipline Modeling in Materials and Structures

ISSN: 1573-6105

Article publication date: 23 June 2020

Issue publication date: 16 September 2020

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Abstract

Purpose

The purpose of this article is to analyze the heat and mass transfer with entropy generation during magnetohydrodynamics (MHD) flow of non-Newtonian Sisko nanofluid over a linearly stretching cylinder under the influence of velocity slip, chemical reaction and thermal radiation. The Brownian motion, thermophoresis and activation energy are assimilated in this nanofluid model. Convective boundary conditions on heat and mass transfer are considered. The physical model may have diverse applications in several areas of technology underlying thermohydrodynamics including supercritical fluid extraction, refrigeration, ink-jet printing and so on.

Design/methodology/approach

The dimensional governing equations are nondimensionalized by using appropriate similarity variables. The resulting boundary value problem is converted into initial value problem using the method of superposition and numerically computed by employing well-known fourth-order Runge–Kutta–Fehlberg approach along with shooting technique (RKF4SM). The quantitative impacts of emerging physical parameters on the velocity, temperature, concentration, skin friction coefficient, Nusselt number, Sherwood number, entropy generation rate and Bejan number are presented graphically and in tabular form, and the salient features are comprehensively discussed.

Findings

From graphical outcomes, it is concluded that the slip parameters greatly influence the flow characteristics. Fluid temperature is elevated with rising radiation parameter and thermal Biot number. Nanoparticle concentration is reported in decreasing form with activation energy parameter. Entropy is found to be an increasing function of magnetic field, Brownian motion and material parameters. The entropy is less generated for shear-thinning fluid compared to shear-thickening as well as Newtonian fluids in the system.

Originality/value

Till now no study has been documented to explore the impact of binary chemical reaction with Arrhenius activation energy on entropy generation in an MHD boundary layer flow of non-Newtonian Sisko nanofluid over a linear stretching cylinder with velocity slip and convective boundary conditions.

Keywords

Acknowledgements

SS gratefully acknowledges the financial support provided by the University Grants Commission (UGC), Government of India, through the UGC Fellowship. We thank the potential reviewers for their constructive and helpful comments to improve the manuscript.

Citation

Sarkar, S., Jana, R.N. and Das, S. (2020), "Activation energy impact on radiated magneto-Sisko nanofluid flow over a stretching and slipping cylinder: entropy analysis", Multidiscipline Modeling in Materials and Structures, Vol. 16 No. 5, pp. 1085-1115. https://doi.org/10.1108/MMMS-09-2019-0165

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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