Mustapha Ait Hssain, S. Armou, Soufiane Nouari, Rachid Mir
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引用次数: 0
摘要
在农业温室中,有效的加热系统对于在冬季保持适当的温度控制和空气流通至关重要。本研究深入分析了加热温室内通过自然对流进行热交换的情况,特别强调了底部加热的影响。研究了两种不同类型的温室:单层温室和双层温室,每种温室都有三角形或球形屋顶。为了捕捉多变的屋顶形状,我们采用了变量变化法,并通过有限体积法获得数值解。结果表明,通过增加瑞利数可以增强传热效果。这种改善因屋顶形状而异。在 Ra = 103 的情况下,球形单层教堂的传热量比三角形教堂的传热量减少约 5%。当 Ra = 105 时,单球面情况有利于传热,与三角形情况相比,传热增加了 0.35%。在双礼拜堂屋顶的情况下,当 Ra = 103 时,三角形屋顶的传热量更大,与球形屋顶相比增加了 6.4%。这项研究不仅揭示了温室传热的基本问题,还为根据特定的屋顶结构和供热条件优化温室设计提供了宝贵的见解。
Modeling heat transfer and air circulation by convection in bottom‐heated agricultural greenhouses
In agricultural greenhouses, effective heating systems are essential for maintaining proper temperature control and air circulation during the winter. This study delves into the analysis of heat exchange through natural convection within heated greenhouses, with a particular emphasis on the impact of bottom heating. Two distinct types: mono‐chapel and bi‐chapel, each featuring triangular or spherical roofs are examined. To capture the variable roof shapes, we employ a change‐of‐variable method, and the numerical solutions are obtained using the finite volume method. The results show that heat transfer is enhanced by increasing the Rayleigh number. This improvement differs according to the shape of the roof. Heat transfer decreases by about 5% for the spherical mono‐chapel case compared to the triangular case for Ra = 103. For Ra = 105, the monospherical case favors heat transfer, with an increase of 0.35% compared to the triangular case. In the case of bi‐chapel roof, heat transfer is greater with a triangular roof for Ra = 103, showing an increase of 6.4% compared to the spherical case. This study not only sheds light on the fundamental aspects of heat transfer in greenhouses but also provides valuable insights for optimizing greenhouse design based on specific roof configurations and heating conditions.