[1] 田华征,马丽. 中国工业碳排放强度变化的结构因素解析 [J]. 自然资源学报,2020,35(3):639-653.

TIANH Z, MAL. Study on the change of China’s industrial carbon emission intensity from the perspective of sector structure [J]. Journal of Natural Resources,2020,35(3):639-653.
[2] 艾欣,董春发. 储能技术在新能源电力系统中的研究综述 [J]. 现代电力,2015,32(5):1-9.

AIX, DONGC F. Review on the application of energy storage technology in power system with renewable energy sources [J]. Modern Electric Power,2015,32(5):1-9.
[3] 丁志康,王维俊,米红菊,等. 新能源发电系统中的储能技术现状与分析 [J]. 当代化工,2020,49(7):1519-1522.

DINGZ K, WANGW J, MIH J, et al. Current situation and analysis of energy storage technology in new energy power generation system [J]. Contemporary Chemical Industry, 2020,49(7):1519-1522.
[4] ALNASER SABBANW, OCHOA LUISF. Optimal sizing and control of energy storage in wind power-rich distribution networks [J]. IEEE Transactions on Power Systems. 2016,31(3),2004-2013.
[5] 侯婷婷. 含大规模风电的电力系统储能电源优化配置研究 [D]. 武汉:华中科技大学,2014.

HOUT T. A research on the optimal allocation of energy storage for power system integrated with large-scale wind power [D]. Wuhan: Huazhong University of Science&Technology,2014.
[6] 陈绪杰. 超级铅酸电池负极用碳材料的改性及电化学性能研究 [D]. 长沙:中南大学,2011.

CHENX J. Modification and electrochemical properties of carbon material for anode of ultrabattery [D]. Changsha:Central South University,2011.
[7] DEHGHANI-SANIJR A,THARUMALINGAME,DUSSEAULTM B,et al. Study of energy storage systems and environmental challenges of batteries [J]. Renewable and Sustainable Energy Reviews,2019,104(APR.):192-208.
[8] MANTHIRAMA,YUX W,WANGS F. Lithium battery chemistries enabled by solid-state electrolytes [J]. Nature Reviews Materials,2017,2(45):294-303.
[9] GUOY,LIH,ZHAIT. Reviving lithium-metal anodes for next-generation high-energy batteries [J]. Advanced Materials,2017,29(29):1700007.
[10] HAFEZA M,JIAOY C,SHIJ J,et al. Stable metal anode enabled by porous lithium foam with superior ion accessibility [J]. Advanced Materials,2018,30(30):1802156.
[11] THACKERAYM M,WOLVERTONC,ISAACSE D. Electrical energy storage for transportation-approaching the limits of,and going beyond,lithium-ion batteries [J]. Energy&Environmental Science,2012,5(7):7854-7863.
[12] THALLERL H. Electrically rechargeable redox flow cells[R]. Washington,DC,USA:National Aeronautics and Space Administration,1974.
[13] THALLERL H. Electrically rechargeable redox flow cells:USA,3996064 [P]. 1976.
[14] 任静. 全钒液流电池用聚砜阴离子复合膜的制备与性能研究 [D]. 哈尔滨:哈尔滨工业大学,2017.

RENJ. Investigation on the preparation and performances of polysulfone anion composite membranes for all vanadium flow battery [D]. Harbin:Harbin Institute of Technology,2017.
[15] 邵志刚,衣宝廉. 氢能与燃料电池发展现状及展望 [J]. 中国科学院院刊,2019,34(4),469-477.

SHAOZ G, YIB L. Developing trend and present status of hydrogen energy and fuel cell development [J]. Bulletin of Chinese Academy of Sciences, 2019,34(4),469-477.
[16] 李建林,黄纪元,房凯,等. 电池储能系统调频技术 [M]. 北京:机械工业出版社,2018.

LIJ L, HUANGJ Y, FANGK,et al. Frequency regulation of electric power system using battery energy storage system [M]. Beijing:China Machine Press,2018.
[17] XIEX,GUOY,WANGB,et al. Improving AGC performance of coal-fueled thermal generators using multi-MW scale BESS:a practical application [J]. IEEE Transactions on Smart Grid, 2018,9(3),1769-1777.
[18] 郑睿敏,谭春辉,侯惠勇,等. 用户侧电池储能系统容量配置探讨 [J]. 电工技术,2020(5):60-62.

ZHENGR M, TANC H, HOUH Y, et al. Discussion on capacity configuration of user-side battery energy storage system [J]. Electric Engineering,2020(5):60-62.
[19] 冯越琪. 电池储能参与含抽水蓄能的电网调频研究 [D]. 长沙:湖南大学,2018.

FENGY Q. Researches on battery energy storage participates in power grid frequency regulation with pumped [D]. Changsha: Hunan University,2018.