[1] Zhang Wenliang(张文亮),Qiu Ming(丘明),Lai Xiaokang(来小康). Application of energy storage technologies in power grids[J]. Power System Technology (电网技术),2008,32:1-9. [2] Liu J. Addressing the grand challenges in energy storage[J]. Adv. Funct. Mater. ,2013,23:924-928. [3] Tao Zhanliang(陶占良),Chen Jun(陈军). Secondary battery systems for energy storage in smart grids[J]. Chinese Science Bulletin (科学通报),2012,57:2545-2560. [4] Chang Y,Mao X X,Zhao Y F, et al . Lead-acid battery use in the development of renewable energy systems in China[J]. J. Power Sources ,2009,191:176-183. [5] Pillot C. The worldwide battery market 2012-2025[C]//The 15th International Power Supply Conference & Exhibit. Nice,France,2013. [6] Lam L T,Haigh N P,Phyland C G,Urban A J. Failure mode of valve-regulated lead-acid batteries under high-rate partial-state-of-charge operation[J]. J. Power Sources ,2004,133:126-134. [7] Ge Zhiyuan(葛智元),Zhou Lixin(周立新),Zhao Wei(赵巍), et al . Recent development of ultrabattery[J]. Chinese Journal of Power Sources (电源技术),2012,10:1585-1588. [8] Shiomi M,Funato T,Nakamura K, et al . Effects of carbon in negative plates on cycle-life performance of valve-regulated lead/acid battery[J]. J. Power Sources ,1997,64:147-152. [9] Pavlov D,Rogachev T,Nikolov P, et al . Mechanism of action of electrochemically active carbons on the processes that take place at the negative plates of lead-acid batteries[J]. J. Power Sources ,2009,191:58-75. [10] Moseley P T. Consequences of including carbon in the negative plates of valve-regulated lead-acid batteries exposed to high-rate partial-state-of-charge operation[J]. J. Power Sources ,2009,191:134-138. [11] Moseley P T,Rand D A J,Peters K. Enhancing the performance of lead-acid batteries with carbon - in pursuit of an understanding[J]. J. Power Sources ,2015,295:268-274. [12] Pavlov D,Nikolov P. Capacitive carbon and electrochemical lead electrode systems at the negative plates of lead-acid batteries and elementary processes on cycling[J]. J. Power Sources ,2013,242:380-399. [13] Lam L T,Louey R. Development of ultra-battery for hybrid-electric vehicle applications[J]. J. Power Sources ,2006,158:1140-1148. [14] Tong P,Zhao R,Zhang R, et al . Characterization of lead (Ⅱ)-containing activated carbon and its excellent performance of extending lead-acid battery cycle life for high-rate partial-state-of-charge operation[J]. J. Power Sources ,2015,286:91-102. [15] Saravanan M,Ganesan M,Ambalavanan S. Enhanced electrochemical performance of a lead-acid battery by a surface modified negative grid with multiwall carbon nanotube coating[J]. RSC Adv. ,2015,5:26081-26091. [16] Hu Chen(胡晨),Xiang Jiayuan(相佳媛),Lin Yuesheng(林跃生), et al . Applications of carbon materials in negative electrode for lead-carbon ultra-battery[J]. Materials Review (材料导报),2015,29:41-48. [17] Xiang J,Ding P,Zhang H, et al . Beneficial effects of activated carbon additives on the performance of negative lead-acid battery electrode for high-rate partial-state-of-charge operation[J]. J. Power Sources ,2013,241:150-158. [18] Kirchev A,Dumenil S,Alias M, et al . Carbon honeycomb grids for advanced lead-acid batteries. Part II:Operation of the negative plates[J]. J. Power Sources ,2015,279:809-824. [19] Hong B,Jiang L,Xue H, et al . Characterization of nano-lead-doped active carbon and its application in lead-acid battery[J]. J. Power Sources ,2014,270:332-341. [20] Micka K,Calábek M,Bača P, et al . Studies of doped negative valve-regulated lead-acid battery electrodes[J]. J. Power Sources ,2009,191:154-158. [21] Wang Duo(王夺),Wu Yaoming(吴耀明),Dong Xiangting(董相廷), et al . Progress in ultrabattery and design[J]. Journal of Chemical Engineering and Technology (化学工程与技术),2012,2:7-12. |