Affiliation:
1. Department of Mathematics, Faculty of Science, South Valley University, Qena, Egypt
Abstract
Numerical computations are presented to scrutinize the entropy analysis in a steady magneto-hydrodynamic non-Newtonian tangent hyperbolic nanofluid regime adjacent to an accelerating stretching cylinder manifested with variable wall temperature. Some of the different water-regular nanofluids involving Cu, Ag, Al2O3, and TiO2 have been addressed. Both the motion governing equations and the equation of entropy generation are formulated in cylindrical coordinates. Similar scaling transformation has been chosen to mutate the governing equations into ordinary differential equations system. Then the resulting ordinary differential equations are solved numerically via the implicit finite difference Keller box. In order to comprehend the flow behavior nearby the cylinder surface, the impacts of such different parameters on entropy generation number, velocity, and temperature distributions have been analyzed in detail. As it is noticed, the temperature distribution represents a decreasing function of mixed convection parameter while an opposite trends are given for nanoparticle volume fraction, curvature, and magnetic field parameters. Additionally, the entropy generation number is an increasing function of the Reynolds number, curvature, and mixed convection parameters, whereas it reduces with magnetic field parameter. The given numerical computations have been validated by a comparison with already published literature, which supports our present developed model.
Subject
Industrial and Manufacturing Engineering,Mechanical Engineering
Cited by
18 articles.
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