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Exergoeconomic optimization of a solar driven system with reverse osmosis desalination unit and phase change material thermal energy storages

机译:具有反渗透淡化装置和相变材料热能存储装置的太阳能驱动系统的能效经济优化

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The goal of the current article is to suggest a novel solar system to produce power, fresh water, and cooling. As solar energy is unavailable at nights, a novel thermal storage system (TES) based on phase change material (PCM) is used to store the required energy for night demands. The main novelty of the current configuration for the PCM is on the dynamic modelling of the PCM to capture the performance of the system during a day and perform the exergoeconomic analysis. After receiving the solar energy, a gas turbine and a Kalina cycle would supply the electricity of the grid. Additionally, the cooling capacity would be provided by the LNG stream for the domestic users, while reverse osmosis (RO) unit would produce the fresh water. To examine the performance of the system, the output parameters of the exergoeconomic analysis in addition to exergy destructions for each sub-system are computed. The output results indicate that the exergy efficiency is about 21.19%, while that of the energy is 41.00%. The cooling load of the suggested system is also 0.709 MW, while the rate of generated electricity and fresh water are 5.73 MW and 7905.7 m(3)/day, respectively. The exergoeconomic analysis also showed that the total cost rate of the system is equal to 25.20 $/GJ, and the levelized cost of electricity is 0.1275 $/kWh. Moreover, the impacts of input parameters on the respective output parameters are analyzed and optimized to reach the best performance of the system. Results indicated that the gas turbine's pressure ratio should be approximately 8, while the needed values for the basic ammonia concentration and LNG pressure ratio are about 0.53 and 8.23, respectively.
机译:当前文章的目的是建议一种新颖的太阳能系统来产生电能,淡水和制冷。由于夜间无法使用太阳能,因此基于相变材料(PCM)的新型热存储系统(TES)用于存储夜间所需的能量。 PCM当前配置的主要新颖之处在于PCM的动态建模,以捕获一天中系统的性能并进行能效经济分析。收到太阳能后,燃气轮机和卡利纳循环将为电网供电。此外,液化天然气流将为家庭用户提供制冷能力,而反渗透(RO)装置将产生淡水。为了检查系统的性能,除了计算每个子系统的火用破坏外,还计算了能效经济分析的输出参数。输出结果表明,火用效率约为21.19%,而能源的效率为41.00%。建议系统的冷却负荷也为0.709 MW,而发电量和淡水的发电量分别为5.73 MW和7905.7 m(3)/天。用能经济分析还表明,该系统的总成本率为25.20 $ / GJ,平均电费为0.1275 $ / kWh。此外,分析并优化了输入参数对各个输出参数的影响,以达到系统的最佳性能。结果表明,燃气轮机的压力比应约为8,而基本氨浓度和LNG压力比所需的值分别约为0.53和8.23。

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