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首页> 外文期刊>Biosystems Engineering >Airflow patterns and turbulence characteristics above the canopy of a tomato crop in a roof-ventilated insect-proof screenhouse
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Airflow patterns and turbulence characteristics above the canopy of a tomato crop in a roof-ventilated insect-proof screenhouse

机译:在屋顶通风防虫屏蔽中番茄作物顶篷上方的气流模式和湍流特性

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Airflow patterns and turbulence characteristics inside a naturally ventilated screenhouse with tomato plants were experimentally investigated using 3D sonic anemometers simultaneously measuring air velocities at six horizontal positions in the space between the screened roof and the top of the canopy. The screenhouse had a flat roof and was ventilated through the roof only. Testing was carried out during about 3 weeks of crop development, under variable external conditions. The mean horizontal air velocity component above the canopy was generally lower than 0.20 U-oh (where U-oh is the mean horizontal external wind speed) and mostly in a direction opposite to the external wind. At low external windspeed, the airflow direction was not necessarily opposite to the wind direction. The vertical air velocity component was generally lower than 0.07 U-oh. The root mean square of the air velocity components, the turbulence intensity and the turbulence kinetic energy were much larger during the day than at night mainly due to the higher daytime effect of buoyancy and to a lesser extent due to the higher external wind speed. Spectral energy slopes of the velocity components were close to -5/3 during the day when wind speed was high. However, at night, when wind speed was low, the spectral energy slope of the velocity vector increased significantly. The integral length scales of turbulent eddies were greater in the horizontal than the vertical direction which is not surprising given the volume under consideration is bounded by the top of the canopy, the roof and the sidewalls. (C) 2019 IAgrE. Published by Elsevier Ltd. All rights reserved.
机译:通过在筛选的屋顶和顶部顶部的空间中的六个水平位置同时测量空气速度,通过三维声波测量仪进行天然通风纸箱内的气流模式和湍流特性。屏幕馆有一个平坦的屋顶,只通过屋顶通风。在可变的外部条件下,在作物发展的约3周内进行测试。顶篷上方的平均水平空气速度分量通常低于0.20 U-OH(其中U-OH是平均水平的外部风速),并且大多沿与外风相反的方向。在低外部风速下,气流方向不一定与风向相反。垂直空气速度分量通常低于0.07 u-OH。在空气速度分量,湍流强度和湍流动能的根部均线比在晚上的时间大得多,主要是由于浮力的较高的日间效果和由于较高的外部风速而较小的程度。当风速高时,速度分量的光谱能量斜率接近-5/3。然而,在夜间,当风速低时,速度向量的光谱能量斜率显着增加。湍流漩涡的整体长度尺度在水平方面比垂直方向更大,垂直方向不令人惊讶地鉴于所考虑的体积被遮篷,屋顶和侧壁的顶部界定。 (c)2019年IAGRE。 elsevier有限公司出版。保留所有权利。

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