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首页> 外文期刊>Open Journal of Fluid Dynamics >CFD Assisted Study of Multi-Chapels Greenhouse Vents Openings Effect on Inside Airflow Circulation and Microclimate Patterns
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CFD Assisted Study of Multi-Chapels Greenhouse Vents Openings Effect on Inside Airflow Circulation and Microclimate Patterns

机译:CFD辅助研究多室温室通风孔开口对内部气流循环和微气候模式的影响

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The aim of this work is to study and quantify the air mass flow exchanged between inside and outside of the greenhouse, in order to determine the ventilation openings layout and the design effect on greenhouse airflow and microclimate distribution. The study was conducted over a 945 m2 multi-chapels arched greenhouse with a polyethylene cover and has thirteen crop rows oriented from north to south; the greenhouse was equipped with side wall and roof vents openings. A simulation was performed using different arrangements and configurations of ventilation openings with the same wind direction. Numerical simulation has been adopted in three dimensions (CFD), using the Fluent computer code which relies on the resolution of the Navier-Stokes equations. These equations were solved in the presence of the turbulence model (k - ε ) and the Boussinesq model equation adopted to incorporate buoyancy forces. The effects of solar and atmospheric radiation were included by solving the radiative transfer equation (RTE), using Discrete Ordinate (DO) model. The effects of the roof openings, the presence of anti-insect screens and crops orientation were investigated and quantified. In a 3-span greenhouse with an anti-aphid in-sect screen in the vent openings, combining roof and sidewall vents gave a ventilation rate per unit opening area that was 1.4 times more than with only side vents. In the latter case, the difference of temperature between the inside and the outside of the greenhouse was greater than 3 ° C. Numerical simulations with an anti-insect screen having a porosity of 56% showed that the air exchange rate with combined ventilation was reduced by 48%. Finally, the paper focused on the effect of vent arrangement on the efficiency of the ventilation and the distribution of the microclimate inside the greenhouse. Results showed that computed ventilation rates varied from 53.43 to 70.95 kg/s, whereas temperature differences varied from 7.15 ° C to 10.14 ° C. This study also showed that other characteristics such as climate heterogeneity must be investigated in order to define the best ventilation configuration.
机译:这项工作的目的是研究和量化温室内部和外部之间交换的空气质量流量,以确定通风口的布局以及设计对温室气流和小气候分布的影响。这项研究是在一个945平方米的多礼堂拱形温室上进行的,该温室带有聚乙烯覆盖层,从北到南有13行作物。温室设有侧壁和屋顶通风孔。使用具有相同风向的通风口的不同布置和配置进行了模拟。使用依赖于Navier-Stokes方程的分辨率的Fluent计算机代码,已在三维(CFD)中采用了数值模拟。在存在湍流模型(k-ε)和采用浮力的Boussinesq模型方程的情况下求解了这些方程。通过使用离散纵坐标(DO)模型求解辐射传递方程(RTE),可以包括太阳辐射和大气辐射的影响。对屋顶开口,防虫网和农作物方向的影响进行了调查和量化。在一个三段式温室中,在通风孔处装有防蚜虫的防虫网,将屋顶通风孔和侧壁通风孔组合使用可使单位开口面积的通风率比仅使用侧面通风孔的通风率高1.4倍。在后一种情况下,温室的内部和外部之间的温度差大于3℃。 C.孔隙率为56%的防虫网的数值模拟表明,组合通风下的空气交换率降低了48%。最后,本文重点讨论了通风口布置对温室内通风效率和小气候分布的影响。结果表明,计算出的通风速率从53.43到70.95 kg / s不等,而温度差则从7.15°C不等。 C至10.14℃ C.这项研究还表明,必须研究其他特征,例如气候异质性,以定义最佳通风配置。

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