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

机译:从下面加热的方腔中瞬态混合对流期间对熵产生的普朗特数效应

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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.
机译:该数值研究考虑了从下面从下面加热的方形腔内的混合对流,传热和熵产生,其中具有移动的冷却的垂直侧壁。假设腔的所有其他水平侧被认为是绝热的。使用有限差分法离散和解决流动功能 - 涡度形式的控制方程。通过改变Richardson号来执行数值模拟,以显示Prandtl号对热,流场的影响,更具体地对熵产生。研究了三种工作流体,通常用于实践,即汞(Pr = 0.0251),空气(Pr = 0.7296)和水(Pr = 6.263)。提出了预测的流线,等温,熵生成以及平均纽带数。所得结果表明,在传热性能和熵生成上,Prandtl数的影响相对重要。随着Prandtl数量的增加,平均露天数量增加。它的价值从3.7到3.8的汞变化,从5.5到13到空气,从12.5到15到水。此外,在汞(Pr≤1)和水(Pr≥​​1)的情况下,总平均熵产生显着高于空气(PR〜1)。其值为汞的700至1100W / m 3 K,从200至500W / m 3 k用于水,并且空气的0.03至5W / m 3 K。

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