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首页> 外文期刊>International Journal of Energy and Environmental Engineering >Solar greenhouses can be promising candidate for CO2 capture and utilization: mathematical modeling
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Solar greenhouses can be promising candidate for CO2 capture and utilization: mathematical modeling

机译:日光温室可以成为二氧化碳捕集和利用的有希望的候选人:数学模型

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Solar greenhouses can be considered as efficient places for biological CO2 capture and utilization if CO2 enrichment becomes a common practice there. As CO2 enrichment is applied only when greenhouses are closed, ventilated greenhouses––which represent a large percentage of greenhouses all over the world––cannot be considered for this practice. Consequently, ventilated greenhouses cannot be considered for CO2 capture and utilization. The aim of this paper is to show––through modeling and simulation––that these ventilated greenhouses can be activated for serving as efficient CO2 capture and utilization places if they are kept closed (to apply CO2 enrichment) and used microclimate control methods alternative to ventilation. The paper introduces a realistic mathematical model in which all the processes and phenomena associated with the biological CO2 capture and utilization by photosynthesis inside greenhouses are considered. The model validity and accuracy were ensured through the good agreement of its numerical predictions with the available experimental results in the literature. The effect of different environmental and planting conditions on the CO2 capturing process (the photosynthesis process) is investigated. A case study was chosen to investigate the effects of the cooling method, cooling temperature, planting conditions, and CO2 concentration level on the cumulative amount of captured CO2 which represents the greenhouse capturing performance. The results show that the capturing performance of greenhouse can be enhanced from value as low as 1.0gCO2/m2day for ventilated greenhouses with low planting density to a value as high as 140gCO2/m2day for high planting density when alternative microclimate control methods and CO2 enrichment are applied, considering the appropriate plant type. Additional benefits besides CO2 capture are also discussed for the possible increase of the plant productivity and possible lowering of water consumption by plants.
机译:如果CO2富集成为那里的普遍做法,则日光温室可被视为有效捕获和利用生物CO2的有效场所。由于仅在温室关闭时才进行二氧化碳浓缩,因此不能考虑使用通风温室(占全世界温室的很大一部分)。因此,通风温室不能考虑用于二氧化碳的捕获和利用。本文的目的是通过建模和仿真表明,如果通风的温室保持关闭状态(应用CO2富集)并使用微气候控制方法替代,它们可以被激活以用作有效的CO2捕获和利用场所。通风。本文介绍了一个现实的数学模型,其中考虑了与温室内光合作用的生物二氧化碳捕获和利用相关的所有过程和现象。通过其数值预测与文献中的可用实验结果的良好一致性,确保了模型的有效性和准确性。研究了不同环境和种植条件对CO2捕集过程(光合作用过程)的影响。选择了一个案例研究来研究冷却方法,冷却温度,种植条件和CO2浓度水平对代表温室捕获性能的捕获CO2累积量的影响。结果表明,当采用替代性小气候控制方法和CO2富集方法时,对于低种植密度的通风温室,温室的捕获性能可以从低至1.0gCO2 / m2·day的值提高至高种植密度的140g·CO2 / m2·day的值。应用,并考虑适当的植物类型。还讨论了除捕集CO2以外的其他好处,这可能会提高植物的生产力并可能降低植物的耗水量。

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