Lattice Boltzmann Simulations of Coupled Mixed Convection and Radiation Effect in a Two-Sided Lid-Driven Enclosure

Authors

  • Youssef Dahani LMFE, Department of Physics, Cadi Ayyad University, Faculty of Sciences Semlalia, B.P. 2390, Marrakesh
  • Mohammed Hasnaoui LMFE, Department of Physics, Cadi Ayyad University, Faculty of Sciences Semlalia, B.P. 2390, Marrakesh
  • Abdelkhalek Amahmid LMFE, Department of Physics, Cadi Ayyad University, Faculty of Sciences Semlalia, B.P. 2390, Marrakesh
  • Ismail Filahi LMFE, Department of Physics, Cadi Ayyad University, Faculty of Sciences Semlalia, B.P. 2390, Marrakesh
  • Abdelmajid Mansour LMFE, Department of Physics, Cadi Ayyad University, Faculty of Sciences Semlalia, B.P. 2390, Marrakesh
  • Safae Hasnaoui LMFE, Department of Physics, Cadi Ayyad University, Faculty of Sciences Semlalia, B.P. 2390, Marrakesh

DOI:

https://doi.org/10.26713/jamcnp.v7i3.1543

Keywords:

Mixed convection, Double-lid driven-cavity, Surface radiation, Lattice-Boltzmann method

Abstract

Using Lattice Boltzmann Method (LBM), the mixed convection and surface radiation effect in a two-sided lid-driven square cavity is studied numerically with air as a working fluid. The numerical code is validated against results available in the literature. The parameters governing the problem are the emissivity of the walls, the Reynolds number and the Richardson number that was varied through the Grashof number. The results obtained show significant effects of the Richardson number and surface radiation on the overall structure of the flow and heat transfer characteristics. The contribution of radiation component to the total Nusselt number outclasses that of convection for high emissive walls at some threshold value of Richardson number.

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References

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Published

2020-12-31
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How to Cite

Dahani, Y., Hasnaoui, M., Amahmid, A., Filahi, I., Mansour, A., & Hasnaoui, S. (2020). Lattice Boltzmann Simulations of Coupled Mixed Convection and Radiation Effect in a Two-Sided Lid-Driven Enclosure. Journal of Atomic, Molecular, Condensed Matter and Nano Physics, 7(3), 175–188. https://doi.org/10.26713/jamcnp.v7i3.1543

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Research Article