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Performance Analyses of Ammonia-Water Absorption Cooling Cycle Combined with Enhanced Passive PVT System

机译:氨吸收冷却循环与增强无源PVT系统的性能分析

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This study aims to evaluate the thermodynamic performance of an enhanced integrated collector-storage solar (ICSS) or passive photovoltaic-thermal (PVT) system with two reflectors for cooling applications. The solar cooling system includes the single-effect absorption cycle. First, the modeling of the ICSS-PV and the overall cooling cycle is validated. Then, an hourly simulation of a 10-kW absorption cooling cycle is carried out. In addition to supplying a fraction of the cooling load of the proposed system, it can also generate electrical energy. Results indicate that the coefficient of performance (COP) of the system is 0.62. Influence of tank water mass, generator temperature, and evaporator temperature on the hourly performance of cycle were investigated. Accordingly, with increasing tank water mass, the electricity generated by ICSS-PV and the solar coefficient of performance increase whereas the hourly solar fraction and solar exergetic efficiency decrease. With increasing generator temperature, the solar coefficient of performance and solar exergetic efficiency decrease but the solar fraction increases; with increasing evaporator temperature, the COP is increased. Also, Influence of the condenser and absorber temperature on the COP and exergetic efficiency was investigated.
机译:本研究旨在评估增强集成集电极 - 储存太阳能(ICS)或无源光伏 - 热(PVT)系统的热力学性能,具有两个反射器,用于冷却应用。太阳能冷却系统包括单效吸收循环。首先,验证了ICSS-PV的建模和整体冷却循环。然后,进行10kW吸收冷却循环的每小时模拟。除了提供所提出的系统的冷却负荷的一部分,还可以产生电能。结果表明系统的性能系数(COP)为0.62。研究了罐水质量,发电机温度和蒸发器温度对循环每小时性能的影响。因此,随着坦克水质量的增加,ICS-PV产生的电力和太阳能系数的性能增加,而小时太阳能分数和太阳能淬火效率降低。随着发电机温度的增加,太阳能和太阳能淬火效率降低但太阳能分数增加;随着蒸发器温度的增加,COP增加。此外,研究了冷凝器和吸收体温度对警察和前进效率的影响。

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