4.2 Article

Cattaneo-Christov based study of TiO2-CuO/EG Casson hybrid nanofluid flow over a stretching surface with entropy generation

Journal

APPLIED NANOSCIENCE
Volume 8, Issue 4, Pages 685-698

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s13204-018-0820-y

Keywords

Casson fluid model; Hybrid nanofluid; Cattaneo-Christov heat flux model; Entropy generation; Heat transfer

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In the present research, a simplified mathematical model is presented to study the heat transfer and entropy generation analysis of thermal system containing hybrid nanofluid. Nanofluid occupies the space over an infinite horizontal surface and the flow is induced by the non-linear stretching of surface. A uniform transverse magnetic field, Cattaneo-Christov heat flux model and thermal radiation effects are also included in the present study. The similarity technique is employed to reduce the governing non-linear partial differential equations to a set of ordinary differential equation. Keller Box numerical scheme is then used to approximate the solutions for the thermal analysis. Results are presented for conventional copper oxide-ethylene glycol (CuO-EG) and hybrid titanium-copper oxide/ethylene glycol (TiO2-CuO/EG) nanofluids. The spherical, hexahedron, tetrahedron, cylindrical, and lamina-shaped nanoparticles are considered in the present analysis. The significant findings of the study is the enhanced heat transfer capability of hybrid nanofluids over the conventional nanofluids, greatest heat transfer rate for the smallest value of the shape factor parameter and the increase in Reynolds number and Brinkman number increases the overall entropy of the system.

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