Optimum Cooling Based on the Exit Openings Position for Turbulent Mixed Convection in Ventilated Cavities

Authors

  • Mohamed Chaour
    Affiliation

    Department of Mechanical Engineering, University of Brothers Mentouri, 25017 Constantine, 325 Ain El Bey Way, Algeria

  • Saadoun Boudebous
    Affiliation

    Department of Mechanical Engineering, University of Larbi Ben M'hidi, 04000 Oum El Bouaghi, P. O. B. 358, Algeria

  • Abdelkader Filali
    Affiliation

    Department of Mechanical Engineering, Ecole Nationale Polytechnique de Constantine, Nouvelle Ville Ali Mendjli, 25000 Constantine, P. O. B. 75, Algeria
    Department of Chemical Engineering, Imperial College London, SW7 2AZ London, Imperial College Rd., United Kingdom

https://doi.org/10.3311/PPme.15962

Abstract

In this paper, turbulent mixed convection in a ventilated square cavity exposed to a cooling of the blocks is studied numerically. The cavity walls were kept adiabatic except the right vertical wall which was equipped with three blocks dissipating the heat at a constant temperature. The commercial Ansys Fluent code is used and governing equations were established and discretized by the finite volume method. The standard k-ε model is considered for the turbulence modeling and SIMPLE algorithm is used for the pressure – velocity coupling. The objective of the present study is to characterize the best outlet location that provides the greatest effective cooling in the blocks by maximizing the heat-elimination rate and decreasing the total temperature in the cavity. Obtained results showed that the variations of the air outlet position in the cavity and the Richardson number have major effects on the stream function and heat transfer.

Keywords:

turbulent mixed convection, vented square cavity, varied outlet location, cooling internal blocks, finite volume method

Published Online

2020-10-05

How to Cite

Chaour, M., Boudebous, S., Filali, A. “Optimum Cooling Based on the Exit Openings Position for Turbulent Mixed Convection in Ventilated Cavities”, Periodica Polytechnica Mechanical Engineering, 64(4), pp. 307–316, 2020. https://doi.org/10.3311/PPme.15962

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Section

Articles