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Simulation and Experimental Analysis of a Demonstrative Solar Heating and Cooling Plant Installed in Naples (Italy)

机译:那不勒斯(意大利)安装的示范太阳能加热和冷却装置的模拟和实验分析

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摘要

In this study the model of a Solar Heating and Cooling (SHC) system and its experimental setup are presented. The SHC system under investigation is a demonstration plant installed in Naples, based on flat plate solar collectors and a single-stage LiBr-H2O absorption chiller. In addition, two vertical tanks are installed as storage system. The balance of system includes: A cooling tower, pumps, valves, safety devices and pipes. The absorption chiller is powered only by solar energy, since there are devices for auxiliary thermal energy. The experimental setup also includes a number of meters (temperature, pressure, flow rate and radiation) to measure, collect and control the prototypal system. The experimental plant is dynamically designed and simulated in order to calculate its energetic and economic performance parameters. This analysis is carried out by means of a zero-dimensional transient simulation model, developed by using the TRNSYS software. Furthermore, a parametric analysis is implemented, aiming at determining the set of the synthesis/design variables that maximize system performances. The model was validated by the first experimental results obtained by the operation of the solar cooling system. Results show that, although flat-plate solar collectors have been specially designed for this kind of application, their operating temperature is often too low to drive the absorption chiller. In addition, the system performance is not particularly sensitive to the storage volume whereas the thermal capacity of the solar field is lower than the absorption chiller demand, determining a very discontinuous operation of the chiller itself.
机译:在这项研究中,提出了太阳能加热和冷却(SHC)系统的模型及其实验设置。正在研究的S​​HC系统是安装在那不勒斯的示范工厂,该工厂基于平板太阳能收集器和单级LiBr-H2O吸收式制冷机。此外,还安装了两个垂直储罐作为存储系统。系统的平衡包括:冷却塔,泵,阀门,安全装置和管道。由于存在用于辅助热能的设备,因此吸收式制冷机仅由太阳能驱动。实验装置还包括许多用于测量,收集和控制原型系统的仪表(温度,压力,流速和辐射)。动态地设计和模拟了实验设备,以计算其能量和经济性能参数。该分析是通过使用TRNSYS软件开发的零维瞬态仿真模型进行的。此外,实施了参数分析,旨在确定使系统性能最大化的综合/设计变量集。该模型通过太阳能冷却系统运行获得的第一个实验结果进行了验证。结果表明,尽管平板太阳能集热器是专门为这种应用而设计的,但它们的工作温度通常太低,无法驱动吸收式制冷机。此外,系统性能对存储量不是特别敏感,而太阳能场的热容量低于吸收式制冷机的需求,这决定了制冷机本身的运行非常不连续。

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