Prandtl Number Effects on the Entropy Generation During the Transient Mixed Convection in a Square Cavity Heated from Below

Authors

  • Nawal Ferroudj
    Affiliation

    Chemical Engineering Department, Faculty of Process Engineering, University of Salah Boubnider Constantine 3, 25000 Constantine, P.O.B. 'B' 72, Algeria
    Laboratory of Biotechnology, National Higher School of Biotechnology (ENSB), University town Ali Mendjeli, Constantine 3, 25100 Constantine, P.O.B. E66, Algeria

  • Hasan Koten
    Affiliation

    Computational Fluid Dynamics Laboratory, Department of Mechanical Engineering, Istanbul Medeniyet University, 34700 Istanbul, Goztep Campus, E5 Street, Turkey

  • Sacia Kachi
    Affiliation

    Chemical Engineering Department, Faculty of Process Engineering, University of Salah Boubnider Constantine 3, 25000 Constantine, P.O.B. 'B' 72, Algeria

  • Saadoun Boudebous
    Affiliation

    Faculty of Sciences and Applied Sciences, University of Larbi Ben M'hidi, 04000 Oum el Bouaghi, P.O.B. 358, Algeria

https://doi.org/10.3311/PPme.17563

Abstract

This numerical study considers the mixed convection, heat transfer and the entropy generation within a square cavity partially heated from below with moving cooled vertical sidewalls. All the other horizontal sides of the cavity are assumed adiabatic. The governing equations, in stream function–vorticity form, are discretized and solved using the finite difference method. Numerical simulations are carried out, by varying the Richardson number, to show the impact of the Prandtl number on the thermal, flow fields, and more particularly on the entropy generation. Three working fluid, generally used in practice, namely mercury (Pr = 0.0251), air (Pr = 0.7296) and water (Pr = 6.263) are investigated and compared. Predicted streamlines, isotherms, entropy generation, as well as average Nusselt numbers are presented. The obtained results reveal that the impact of the Prandtl number is relatively significant both on the heat transfer performance and on the entropy generation. The average Nusselt number increase with increasing Prandtl number. Its value varies thereabouts from 3.7 to 3.8 for mercury, from 5.5 to 13 for air and, from 12.5 to 15 for water. In addition, it is found that the total average entropy generation is significantly higher in the case of mercury (Pr«1) and water (Pr»1) than in the case of air (Pr~1). Its value varies approximately from 700 to 1100 W/m3 K for mercury, from 200 to 500 W/m3 K for water and, from 0.03 to 5 W/m3 K for air.

Keywords:

Prandtl number, entropy generation, mixed convection, square cavity, finite difference method

Published Online

2021-09-24

How to Cite

Ferroudj, N., Koten, H., Kachi, S., Boudebous, S. “Prandtl Number Effects on the Entropy Generation During the Transient Mixed Convection in a Square Cavity Heated from Below”, Periodica Polytechnica Mechanical Engineering, 65(4), pp. 310–325, 2021. https://doi.org/10.3311/PPme.17563

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Articles