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首页> 外文期刊>Acta Horticulturae >Numerical and experimental study of fan and pad evaporative cooling system in a greenhouse with tomato crop.
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Numerical and experimental study of fan and pad evaporative cooling system in a greenhouse with tomato crop.

机译:番茄作物温室大棚风机和垫块蒸发冷却系统的数值和实验研究。

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An experimental greenhouse equipped with fan and pad evaporative cooling is simulated numerically using a commercial Computational Fluid Dynamics (CFD) code. The main aspects of evaporative cooling systems in terms of heat and mass transfer and both the external and internal climatic conditions were integrated to set up the numerical model. The crop (tomato) was simulated using the equivalent porous medium approach by the addition of a momentum and energy source term. Preliminary calculations were carried out and validated by experimental measurements, in order the pressure drop occurred in crop model due to air flow, to be determined as a function of leaf area, stage of crop growth and cultivation technique. The temperature and humidity of incoming air and the operational characteristics of exhaust fans were specified to set up the CFD model. The numerical analysis was based on the Reynolds-averaged Navier-Stokes equations in conjunction with the RNG k- epsilon turbulence model. The finite-volume method was used to solve the governing equations. The 3D full scale model was solved in several differencing schemes of various orders in order to examine its accuracy. The simulation results were validated with experimental measurements obtained at a height level of 1.2 m above the ground in the middle of the crop canopy at 23 and 8 points, concerning air temperature and air humidity respectively. The correlation coefficient between computational results and experimental data was at the order of 0.7419 for air temperature and 0.8082 for air relative humidity. The results show that the evaporative cooling system for greenhouses could be effectively parameterized in numerical terms, providing a useful tool to improve the system's efficiency.
机译:使用商业计算流体动力学(CFD)代码对装有风扇和垫板蒸发冷却装置的实验温室进行了数值模拟。结合蒸发冷却系统的主要方面进行传热和传质以及内部和外部气候条件,以建立数值模型。使用等效的多孔介质方法通过添加动量和能源项来模拟作物(番茄)。进行了初步计算,并通过实验测量进行了验证,以便确定由于气流导致的作物模型中的压降取决于叶面积,作物生长阶段和栽培技术。指定进气温度和湿度以及排气扇的运行特性以建立CFD模型。数值分析是基于雷诺平均Navier-Stokes方程以及RNGk-ε湍流模型。用有限体积法求解控制方程。为了检查其准确性,以各种不同阶数的差分方案对3D满比例模型进行了求解。仿真结果通过实验测量值得到了验证,这些测量值是在作物冠层中部离地面1.2 m的高度上分别在23点和8点处获得的,分别与气温和空气湿度有关。空气温度的计算结果与实验数据之间的相关系数约为0.7419,空气相对湿度的相关系数约为0.8082。结果表明,温室蒸发冷却系统可以在数值上有效地参数化,为提高系统效率提供了有用的工具。

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