Entropy analysis in mixed convection mhd flow of nanofluid over a non-linear stretching sheet

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Abstract

This article deals with a numerical study of entropy analysis in mixed convection MHD flow of nanofluid over a non-linear stretching sheet taking into account the effects of viscous dissipation and variable magnetic field. The nanofluid is made of such nano particles as SiO2 with pure water as a base fluid. To analyze the problem, at first the boundary layer equations are transformed into non-linear ordinary equations using a similarity transformation. The resultant equations are then solved numerically using the Keller-Box scheme based on the implicit finite-difference method. The effects of different non-dimensional governing parameters such as magnetic parameter, nanoparticles volume fraction, Nusselt, Richardson, Eckert, Hartman, Brinkman, Reynolds and entropy generation numbers are investigated in details. The results indicate that increasing the nano particles to the base fluids causes the reduction in shear forces and a decrease in stretching sheet heat transfer coefficient. Also, decreasing the magnetic parameter and increasing the Eckert number result in improves heat transfer rate. Furthermore, the surface acts as a strong source of irreversibility due to the higher entropy generation number near the surface. © 2012 by JSME.

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Habibi Matin, M., Nobari, M. R. H., & Jahangiri, P. (2012). Entropy analysis in mixed convection mhd flow of nanofluid over a non-linear stretching sheet. Journal of Thermal Science and Technology, 7(1), 104–119. https://doi.org/10.1299/jtst.7.104

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