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DYNAMIC MODELING AND SIMULATION OF A SOLAR AIR HEATER ASSISTED BY A DEHUMIDIFICATION SYSTEM FOR AN AGRICULTURE GREENHOUSE

机译:农业温室除湿系统辅助太阳能空气加热器的动态建模与仿真

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Appropriate greenhouse microclimate control is essential for optimizing plant growth and food production. But. maintenance of a greenhouse microclimate generally requires an excessive amount of energy. According to a report published by Scott Sanford [1], the energy cost for greenhouses is considered the third highest annual cost, behind labor and plant materials. At northern latitudes, heating is the primary energy requirement needed in an agriculture greenhouse, comprising 70 to 80% of a typical greenhouse energy consumption [1]. A reduction of heating energy is necessary to ensure the economic viability of a greenhouse. This research investigates the potential energy savings associated with integrating a solar air heater assisted with a desiccant wheel in an agriculture greenhouse. This study has two main thrusts. The first is to demonstrate the energy effectiveness a solar air heater with a dehumidification system to maintain the internal climate. The second thrust is to develop a multi-linear regression model that can be used to predict the hourly heating requirement. Thereafter, the developed regression model can be used to conduct a parametric analysis to investigate the impact of changing greenhouse parameters on the total heating requirements. A case study has been considered for a greenhouse that is 30 m long and 24 m wide. The climate condition of the city of Dayton, OH was selected for this case. The predicted performance of the integrated system is compared with two other heating systems: electric and gas furnaces. The study reveals that heating energy savings in the proposed system is 51% and 30% when compared with the electric and gas furnaces, respectively. Aside from heating energy savings, the proposed system can be efficiently used to control indoor humidity in a way that ensures better crop yield.
机译:适当的温室小气候控制对于优化植物生长和食品生产至关重要。但。温室微气体的维护通常需要过多的能量。根据斯科特桑福德[1]发表的一份报告,温室的能源成本被认为是第三次最高年度成本,劳动和植物材料。在北纬,加热是农业温室所需的主要能源要求,其中包括70%至80%的典型温室能源消耗[1]。需要减少加热能量,以确保温室的经济可行性。该研究调查了与集成太阳能加热器辅助在农业温室中的干燥车轮相关联的潜在节能。这项研究有两个主要推力。首先是展示能量效率具有除湿系统的太阳能空气加热器,以保持内部气候。第二推力是开发一种多线性回归模型,可用于预测每小时的加热要求。此后,开发的回归模型可用于进行参数分析以研究更换温室参数对总供热要求的影响。案例研究已被认为是30米长,24米宽的温室。为此案例选择了代顿市的气候状况。将集成系统的预测性能与其他两种加热系统进行比较:电气和燃气炉。该研究表明,与电气炉相比,所提出的系统中的加热节能分别为51%和30%。除了加热节能之外,所提出的系统可以有效地用于控制室内湿度,以确保更好的作物产量。

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