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Performance evaluation of a solar transcritical carbon dioxide Rankine cycle integrated with compressed air energy storage

机译:与压缩空气储存集成的太阳临界二氧化碳兰氏峰循环的性能评价

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摘要

Solar thermal power generation is a promising technique in renewable energy utilization with the advantages of techno-economic, energy storability, power continuity, and stability. The present paper designed a solar transcritical carbon dioxide Rankine cycle integrated with compressed air energy storage, which could resolve the impact of solar energy intermittence and enhance the technical flexibility in solar thermal power and storage. An original system configuration with heat recovery of the compressed air was proposed to improve the system performance. The effects of carbon dioxide mass flow rate and heat source temperature on the performances of Rankine cycle and energy storage system were evaluated in the charging process. The results indicate that the air compression heat recovery could enhance the Rankine cycle performance, and weakened the negative effect of pump power at high carbon dioxide mass flow and air storage pressure. As the carbon dioxide mass flow and the air storage pressure increase, the system performance decreases severely due to the negative effect of pump power. The positive impact of expander power on system performance is more evident at the low mass flow of carbon dioxide, especially at high air storage pressure. As the heat source temperature decreases, the negative effect of pump power on the system performance gets severe, especially at the high mass flow. The air storage pressure has a more visible impact on the exergy efficiency at the low mass flow. Compression heat recovery results in a low exergy efficiency of the energy storage system in the initial charging process. The exergy efficiency is also affected by the air exergy in the isothermal storage chamber with a constant volume with a rapid heat transfer from the chamber to the environment.
机译:太阳能发电是可再生能源利用的有希望的技术,具有技术经济,能源可储存性,电力连续性和稳定性的优势。本文设计了一种与压缩空气储能集成的太阳跨临界二氧化碳朗肯循环,可以解决太阳能间歇性的影响,并提高太阳能热力和储存的技术灵活性。提出了一种原始系统配置,具有压缩空气的热回收,以提高系统性能。在充电过程中评估了二氧化碳质量流量和热源温度对朗肯循环和能量存储系统性能的影响。结果表明,空气压缩热回收可以提高兰氏循环性能,削弱了高碳二氧化碳质量流量和空气储存压力下泵功率的负效应。随着二氧化碳质量流量和空气储存压力的增加,由于泵功率的负面影响,系统性能严重降低。扩展器电源对系统性能的正面影响在二氧化碳的低质量流动中更明显,特别是在高空气储存压力下。随着热源温度降低,泵浦电力对系统性能的负面影响严重,特别是在高质量流动下。空气储存压力对低质量流动的电气效率具有更明显的影响。压缩热量回收在初始充电过程中导致储能系统的低通电效率。在等温储存室中的空气也受到等温储存室的恒定体积的影响,具有从腔室到环境的快速传热。

著录项

  • 来源
    《Energy Conversion & Management》 |2020年第7期|112931.1-112931.13|共13页
  • 作者单位

    Beijing Inst Technol Sch Mech Engn 5 South Zhongguancun St Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Mech Engn 5 South Zhongguancun St Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Mech Engn 5 South Zhongguancun St Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Mech Engn 5 South Zhongguancun St Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Mech Engn 5 South Zhongguancun St Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Mech Engn 5 South Zhongguancun St Beijing 100081 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Solar energy; Transcritical carbon dioxide Rankine cycle; Compressed air energy storage; System performance;

    机译:太阳能;跨临界二氧化碳朗肯循环;压缩空气储存;系统性能;

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