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Three-dimensional computational fluid dynamics analysis of buoyancy-driven natural ventilation and entropy generation in a prismatic greenhouse

机译:棱柱形温室中浮力驱动的自然通风和熵产生的三维计算流体动力学分析

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A computational analysis of the natural ventilation process and entropy generation in 3-D prismatic greenhouse was performed using CFD. The aim of the study is to investigate how buoyancy forces influence air-flow and temperature patterns inside the greenhouse having lower level opening in its right heated fa?ade and also upper level opening near the roof top in the opposite cooled fa?ade. The bot-tom and all other walls are assumed to be perfect thermal insulators. Rayleigh number is the main parameter which changes from 103 to 106 and Prandtl number is fixed at Pr = 0.71. Results are reported in terms of particles trajectories, iso-surfaces of temperature, mean Nusselt number, and entropy generation. It has been found that the flow structure is sensitive to the value of Rayleigh number and that heat transfer increases with increasing this parameter. Also, it have been noticed that, using asymmetric opening positions improve the natural ventilation and facilitate the occurrence of buoyancy induced upward cross air-flow (low-level supply and upper-level extraction) inside the greenhouse.
机译:使用CFD对3-D棱形温室中的自然通风过程和熵产生进行了计算分析。该研究的目的是研究浮力如何影响温室内部的气流和温度模式,该温室的右加热立面具有较低水平的开口,而相反的冷却立面具有靠近屋顶顶部的高水平开口。底部和所有其他壁假定为理想的绝热体。瑞利数是从103变为106的主要参数,普朗特数固定为Pr = 0.71。结果以粒子轨迹,温度等值面,平均努塞尔数和熵产生的形式报告。已经发现,流动结构对瑞利数的值敏感,并且热传递随着该参数的增加而增加。另外,已经注意到,使用不对称的开口位置改善了自然通风,并促进了在温室内引起浮力引起的向上的交叉气流(低水平供应和高水平提取)。

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