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Combination of subcooled compressed air energy storage system with an Organic Rankine Cycle for better electricity efficiency, a thermodynamic analysis

机译:热力学分析将过冷的压缩空气储能系统与有机朗肯循环相结合以提高电效率

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The subcooled concept is one of the many different configurations proposed for compressed air energy storage technology. This electricity storage system produces heat as it charges and cogenerates cold and power when discharging. Therefore, it is most appropriate for locations with district heating and cooling systems besides electricity grids. Although subcooled compressed air energy storage system offers the high overall coefficient of performance of about 1.5 in a full round-trip operation, the power-to-power efficiency of this system is far lower than that of the advanced isentropic compressed air system. Considering the facts that the electricity sector is extremely more important than other energy sectors in the future energy systems, this study proposes the combination of a subcooled energy storage unit with an Organic Rankine Cycle for improving the electricity efficiency of this compressed air concept. The proposed hybrid system is thermodynamically analyzed and the exergetic and energetic performances of the system under uniform and fluctuating operation conditions are evaluated. The results show that not only this hybridization leads to enhanced electricity and cold efficiencies by around 20% each, but also the heat production does not fall significantly owing to the heat supply potential of the Organic Rankine Cycle condenser. The coefficient of performance/exergetic efficiency of the system in the conventional subcooled system and the hybrid design are 1.5/49% and 1.6/58%, respectively. (C) 2019 Elsevier Ltd. All rights reserved.
机译:过冷概念是为压缩空气储能技术提出的众多不同配置之一。该蓄电系统在充电时会产生热量,放电时会产生冷能和电能。因此,除了电网之外,它最适合于具有区域供暖和制冷系统的位置。尽管过冷的压缩空气储能系统在全程运行中可提供约1.5的较高的总体性能系数,但该系统的动力转换效率远低于先进的等熵压缩空气系统。考虑到在未来的能源系统中电力部门比其他能源部门极其重要的事实,本研究建议将过冷的能量存储单元与有机朗肯循环相结合,以提高这种压缩空气概念的电力效率。对提出的混合动力系统进行了热力学分析,并评估了该系统在均匀且波动的运行条件下的能效性能。结果表明,这种杂交不仅使电效率和冷效率各提高了约20%,而且由于有机朗肯循环冷凝器的供热潜力,发热量也没有显着下降。在传统的过冷系统和混合动力设计中,系统的性能/能量效率系数分别为1.5 / 49%和1.6 / 58%。 (C)2019 Elsevier Ltd.保留所有权利。

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