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Greenhouse microclimate and dehumidification effectiveness under different ventilator configurations

机译:不同通风机配置下的温室小气候和除湿效果

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In this paper, the efficiency of two different greenhouse ventilation opening configurations on greenhouse microclimate during dehumidification process with simultaneously heating and ventilation was analysed by means of computational fluid dynamics (CFD) using a commercial program based on the finite volume method. The numerical model was firstly validated against experimental data collected in a tunnel greenhouse identical with the one used in simulations. A good qualitative and quantitative agreement was found between the numerical results and the experimental measurements. The results of the simulations performed for an outside wind direction perpendicular to the greenhouse axis show clearly the influence of ventilation opening configurations on the velocity, temperature and humidity distributions inside the greenhouse. With the first ventilation configuration (roll-up type) maximum air velocity inside the greenhouse was reached in the greenhouse near the ground, with the lowest values observed near the greenhouse roof. As a result, temperature and humidity decreased first near the ground and afterwards in the rest of the greenhouse volume during the dehumidification process. The exactly opposite pattern was observed with the second configuration (pivoting door type). The maximum air velocities were observed near the greenhouse roof where air temperature and humidity were decreased first during the dehumidification process. Energetically the first configuration is proven to be better since the ratio of latent to sensible exchanges during the dehumidification process was higher than the first configuration.
机译:本文通过基于有限体积方法的商业程序,通过计算流体动力学(CFD)分析了两个不同温室通风口配置对除湿过程中同时进行加热和通风的温室小气候的效率。首先根据与模拟中使用的相同的隧道温室中收集的实验数据验证了该数字模型。在数值结果和实验测量之间发现了良好的定性和定量一致性。对垂直于温室轴线的外部风向进行的模拟结果清楚地表明了通风口配置对温室内部速度,温度和湿度分布的影响。使用第一种通风配置(卷起式),在靠近地面的温室中达到了温室内部的最大空气速度,在温室屋顶附近观察到了最低的速度。结果,在除湿过程中,温度和湿度首先在地面附近降低,然后在其余温室中降低。在第二种配置(旋转门类型)中观察到了完全相反的图案。在温室屋顶附近观察到最大风速,在除湿过程中空气温度和湿度首先降低。从能量上讲,由于除湿过程中潜在交换与显性交换的比率高于第一构造,因此事实证明第一构造更好。

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