Published September 2020 | Version v1
Journal article

Magnetohydrodynamic natural convection of hybrid nanofluid in a porous enclosure: numerical analysis of the entropy generation

  • 1. University of Mascara. LSTE Laboratory, Faculty of Science and Technology (Algeria)
  • 2. Université Mustapha Stambouli de Mascara. Laboratoire de Physique Quantique de la Matière et Modélisation Mathématique (LPQ3M) (Algeria)
  • 3. University of 20 août 1955-Skikda. Department of Physics, Faculty of Sciences (Algeria)
  • 4. Aswan University. Department of Mathematics, Faculty of Science (Egypt)
  • 5. King Fahd University of Petroleum and Minerals. Mechanical Engineering Department (Saudi Arabia)
  • 6. Université de Lorraine. Laboratoire énergétique de Longwy (FJV/LERMAB) (France)

Description

The effect on the entropy production and MHD convection of the hybrid nanofluid Al2O3–Cu/water (water with Cu and Al2O3 nanoparticles) in a porous square enclosure is studied numerically via Galerkin finite element method. The enclosure used for flow and natural convection analysis is subjected to sinusoidal varying temperatures at the boundaries. Calculations were performed for specific parameters of the Rayleigh number (Ra = 103–106), porosity ratio (ε = 0.1–0.9), Darcy number (Da = 10−5–10−2), Hartmann number (Ha = 0–100) and nanoparticles concentration (φ = 0–0.08). The numerical results are presented by velocity profiles, isotherms, streamlines, and Nusselt number. They indicate that the isotherms subject to estimation variations under Ha boost from 0 to 100 as Ra enhances. At high Ha, the conduction transfer mechanism is more obvious. Also, it is seen that the convective heat transfer becomes stronger with the enhancement of the Ra while it detracts with the rise in Ha. Due to the Ra increase, the flow cell becomes stronger. For Ra = 106 and higher Hartmann numbers, the isotherms remain constant which is an indication of convection predominance.

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Thermal Analysis and Calorimetry
Journal Volume
141
Journal Issue
5
Journal Page Range
p. 1981-1992
ISSN
1388-6150

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Copyright
Copyright (c) 2020 © Akad#Latin Small Letter E With Acute#miai Kiad#Latin Small Letter O With Acute#, Budapest, Hungary 2020