期刊文献+

跨临界二氧化碳储能系统研究 被引量:13

Research on Transcritical Carbon Dioxide Energy Storage System
下载PDF
导出
摘要 面向电力系统对储能技术的迫切需求,以及针对压缩空气储能系统存在的技术与应用瓶颈问题,提出一种跨临界二氧化碳储能系统。系统利用二氧化碳超临界压力低且易液化特点,解决液化空气储能难于液化及低温储存的难题;进一步揭示系统性能随关键参数的变化规律,开展系统热力性能优化,获得系统最优效率,为49.15%;同时对系统及关键过程进行?分析,找出系统?损大的环节及内部原因。跨临界二氧化碳储能系统具有绿色、不受地理条件限制、储能密度较大等优点,具有较好的应用前景。 This paper presentsed a transcritical carbon dioxide energy storage system in order to address the urgent need of energy system in electric system and the bottleneck of compressed air energy system in terms of technology and application. The system uses carbon dioxide, which has low supercritical pressure and is easy to liquefy, to overcome the difficulty of liquefaction and low temperature storage in liquefied air storage. The results show that the system performance is optimized with the key parameters, and the optimal system efficiency is 49.15%. Meanwhile, exergy analysis is conducted based on the system and key process to identify the part with large exergy loss. The transcritical carbon dioxide energy storage system with good application prospect has the advantages of green, independent of geographical conditions, large energy storage density and so on.
作者 李玉平 徐玉杰 李斌 郭欢 郭丛 陈海生 LI Yuping;XU Yujie;LI Bin;GUO Huan;GUO Cong;CHEN Haisheng(North China Electric Power University,Baoding 071003,Hebei Province,China;Institute of Engineering Thermophysics,Chinese Academy of Sciences,Haidian District,Beijing 100190,China)
出处 《中国电机工程学报》 EI CSCD 北大核心 2018年第21期6367-6374,共8页 Proceedings of the CSEE
基金 国家重点基础研究发展计划项目(973计划)(2015CB 251301) 优秀青年科学基金项目(51522605)
关键词 储能 跨临界二氧化碳 系统优化 ?分析 energy storage transcritical carbon dioxide system optimization exergy analysis
  • 相关文献

参考文献7

二级参考文献40

  • 1程时杰,文劲宇,孙海顺.储能技术及其在现代电力系统中的应用[J].电气应用,2005,24(4):1-8. 被引量:132
  • 2Global Wind Energy Council. Global Wind 2009 Report [EB/OL]. [2010-4-28]. http://www.gwec.net/index.php?id =167.
  • 3Korpaas M, Holen A T, Hildrum R. Operation and Sizing of Energy Storage for Wind Power Plants in a Market System [J]. Electrical Power and Energy Systems, 2003, 25:599-606.
  • 4Greenblatt J B, Succax S, Denkenberger D C, et al. Baseload Wind Energy: Modelling the Competition Between Gas Turbines and Compressed Air Energy Storage for Supplemental Generation [J]. Energy Policy, 2007, 35: 1474-1492.
  • 5Ridge Energy Storage & Grid Services. The Economic Impact of CAES on Wind in TX, OK, and NM, Final Report [R]. 2005.
  • 6CHEN Haisheng, DING Yulong, Toby P, et al. A Method of Storing Energy and a Cryogenic Energy Storage System, WO/2007/096656 [P/OL]. 2007-08-30.
  • 7US Department of Energy Office of Electricity Delivery & Energy Reliability. Electric power industry needs for grid-scale storage applications[EB/OL].http://www.doe.gov,2010.
  • 8US Department of Energy Electricity Advisory Committee. Bottling electricity:storage as an strategic tool for managing variability and capacity concerns in the modern grid[OL].http://www.oe.energy.gov/eac.htm,2010.
  • 9DUNN B,KAMATH H,TARASCON J M. Electrical energy storage for the grid:a battery of choices[J].Science,2011,(6058):928-935.
  • 10US Department of Energy Office of Electricity Delivery & Energy Reliability. Energy storage program planning document[OL].http://www.doe.gov,2011.

共引文献562

同被引文献122

引证文献13

二级引证文献50

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部