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首页> 外文期刊>Computers and Electronics in Agriculture >Development of a CFD crop submodel for simulating microclimate and transpiration of ornamental plants grown in a greenhouse under water restriction
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Development of a CFD crop submodel for simulating microclimate and transpiration of ornamental plants grown in a greenhouse under water restriction

机译:在水限制下,在温室中生长的观赏植物微观和蒸腾的CFD作物子模型的研制

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Predictive models of soil-plant-atmosphere water transfers may be helpful to better manage water inputs to plants in greenhouses. In particular, Computational Fluid Dynamics appears to be a powerful tool to describe the greenhouse microclimate and plant behavior. Up until now, most models for potted plants grown in greenhouses were established for well-watered conditions. In this context, the aim of this work is to develop a specific submodel to simulate the distributed transpiration and microclimate during plants grown in pots inside greenhouses under water restriction conditions. A 2D transient CFD (Computational Fluid Dynamics) model was implemented and user-defined functions were adapted to take account of the crop interactions with the climate inside the greenhouse. The crop was considered as a porous medium and specific source terms for transpiration and sensible heat transfers were added. A specific submodel was also implemented to calculate the substrate water content based on the water balance between irrigation and transpiration. Particular care was paid to the modeling of stomatal resistance. In order to obtain the input data and to validate the CFD simulations, an experiment was conducted over 16 weeks inside a greenhouse equipped with New Guinea impatiens ornamental plants grown in containers on shelves. Both well-watered and restriction conditions were analyzed. The results of the CFD simulations showed the ability of the model to correctly predict transpiration, air and leaf temperatures as well as air humidity inside the greenhouse for both water regimes. Different irrigation scenarios were then tested, progressively reducing the water supply by providing a lesser amount of water than the growing media water capacity. The simulations made it possible to assess the model response to different irrigation regimes on plant transpiration, usual growing media water potential and climate distribution inside the greenhouse. The tests also showed that the water supply could be reduced by 20% without significantly impacting the transpiration rate and, therefore, potential plant growth. The CFD model could thus be useful to test different irrigation scenarios and better manage water inputs. (C) 2017 Published by Elsevier B.V.
机译:土壤 - 植物气氛的预测模型可能有助于更好地管理温室的植物的水投入。特别是,计算流体动力学似乎是描述温室小气候和植物行为的强大工具。到目前为止,大多数用于温室种植的盆栽植物的大多数模型都是为良好浇水的条件建立的。在这种情况下,这项工作的目的是开发一个特定的子模型,以模拟在水限制条件下的温室内的植物中生长的植物中的分布式蒸腾和微节化。实施了2D瞬态CFD(计算流体动力学)模型,并进行了用户定义的函数,适于考虑到温室内的气候作物互动。将作物视为多孔培养基,并加入蒸发的特定源术语和合理的热转运。还实施了特定的子模型以基于灌溉和蒸腾之间的水平衡来计算衬底水含量。对气孔抗性的建模进行了特别的护理。为了获得输入数据并验证CFD模拟,在装备新的豚鼠的温室内部进行了16周进行了一项实验,在货架上的容器中生长的新豚鼠。分析了含水良好和限制条件。 CFD模拟的结果表明,模型正确预测蒸腾,空气和叶温以及温室内的空间内的空气湿度。然后测试不同的灌溉场景,通过提供比不断增长的介质水容量较小的水逐渐减少供水。模拟使得可以评估对植物蒸腾的不同灌溉制度的模型反应,通常在温室内的常规日益增长的媒体水潜力和气候分布。测试还表明,供水可以减少20%,而不会显着影响蒸腾率,因此潜在的植物生长。因此,CFD模型可用于测试不同的灌溉场景和更好地管理水投入。 (c)2017年由Elsevier B.V发布。

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