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铅炭超级蓄电池是由铅酸电池和超级电容器通过创新组合而形成的新型电化学储能装置,具有高功率、长寿命的特点,在电动汽车与规模储能方面有良好的应用前景。其性能突破的关键是将炭材料用到铅炭超级电池负极中,降低负极硫酸盐化。在高倍率部分荷电态工况下,阀控铅酸电池失效的原因是在负极板表面生成致密、不导电的硫酸铅的绝缘层。炭材料添加剂能抑制负极不可逆硫酸盐化,显著提高在高倍率部分荷电态工况下电池的循环寿命、功率性能和充电接受能力。介绍了炭材料抑制负极不可逆硫酸盐化的内在作用机理,综述了最近几年炭材料在铅炭超级蓄电池中应用的研究进展。

Lead-carbon ultra-battery is a hybrid electrochemical energy storage device,which combines a lead-acid battery with an asymmetric super-capacitor by internal paralleling.The new battery has higher power density and longer cycle life,and offers potential for using in electric vehicles and large stationary applications.The main reason for the improved performance of lead-acid battery is the use of carbon materials to reduce sulfate in the negative elec-trode of the battery.The valve-regulated lead-acid (VRLA)battery fails prematurely due to the progressive build-up of lead sulfate mainly on the surfaces of the negative plates.The accumulation of lead sulfate reduces the effective reaction area of the negative plates,making the charge and discharge processes of the negative plates difficult.It has been found that adding carbon to the negative active material can enhance the performance of the lead-acid batteries un-der high-partial-state-of-charge (HRPSoC)conditions.Lead-carbon ultra-batteries exhibit remarkable improvement in the rate capability,active material utilization,cycle performance and charge acceptance compared to the conventional lead-acid batteries in high-rate partial-state-of-charge cycling duty.Herein the progress of research in application of carbon materials in lead-carbon ultra-battery and the underlying mechanisms of carbon additives in preventing/reducing formation of sulfation on the negative electrode of the batteries are reviewed.

参考文献

[1] Francisco Diaz-Gonzalez;Andreas Sumper;OriolGomis-Bellmunt;Roberto Villafafila-Robles .A review of energy storage technologies for wind power applications[J].Renewable & sustainable energy reviews,2012(4):2154-2171.
[2] 金翼,孙信,余彦,丁楚雄,陈春华,官亦标.钠离子储能电池关键材料[J].化学进展,2014(04):582-591.
[3] Mahlia T M I;Saktisahdan T J;Jannifar A et al.A review of available methods and development on energy storage Technology update[J].RENEWABLE & SUSTAINABLE ENERGY REVIEWS,2014,33:532.
[4] Yang, Z.;Zhang, J.;Kintner-Meyer, M.C.W.;Lu, X.;Choi, D.;Lemmon, J.P.;Liu, J. .Electrochemical energy storage for green grid[J].Chemical Reviews,2011(5):3577-3613.
[5] 杨汉西,钱江锋.水溶液钠离子电池及其关键材料的研究进展[J].无机材料学报,2013(11):1165-1171.
[6] Dunn B;Kamath H;Tarascon J M .Electrical energy sto-rage for the grid:A battery of choices[J].SCIENCE,2011,334(6058):928.
[7] Badrinarayanan R;Zhao Jiyun;Tseng K J et al.Extended dynamic model for ion diffusion in all-vanadium redox flow battery including the effects of temperature and bulk electro-lyte transfer[J].Journal of Power Sources,2014,270:576.
[8] Wang Y J;Zhang C B;Chen Z H .A method for joint esti-mation of state-of-charge and available energy of LiFePO4 batteries[J].Applied Energy,2014,135:81.
[9] Ahmadi L;Fowler M;Young S B et al.Energy efficiency of Li-ion battery packs re-used in stationary power applica-tions[J].Sustain Energy Technol Assess,2014,8:9.
[10] Longo S;Antonucci V;Cellura M et al.Life cycle assess-ment of storage systems:The case study of a sodium/nickel chloride battery[J].J Cleaner Prod,2014,85:337.
[11] Lam L T;Louey R;Haigh N P et al.VRLA ultrabattery for high-rate partial-state-of-charge operation[J].Journal of Power Sources,2007,174:16.
[12] Nakamura K;Shiomi M;Takahashi K .Failure modes of valve-regulated lead-acid batteries[J].Journal of Power Sources,1996,59:153.
[13] Saravanan M;Ganesan M;Ambalavanan S .An in situ ge-nerated carbon as integrated conductive additive for hierar-chical negative plate of lead-acid battery[J].Journal of Power Sources,2014,251:20.
[14] Hariprakash B;Gaffoor S A;Shukla A K .Lead-acid batte-ries for partial-state-of-charge applications[J].Journal of Power Sources,2009,191:149.
[15] 张浩,吴贤章,相佳媛,曹高萍,陈建.超级铅蓄电池研究进展[J].电池工业,2012(03):171-175.
[16] Lam L T;Haigh N P;Phyland C G et al.Novel technique to ensure battery reliability in 42-V PowerNets for new-ge-neration automobiles[J].Journal of Power Sources,2005,144:552.
[17] 张浩,曹高萍,杨裕生.炭材料在铅酸电池中的应用[J].电源技术,2010(07):729-733.
[18] Pavlov D;Nikolov P;Rogachev T .Influence of carbons on the structure of the negative active material of lead-acid bat-teries and on battery performance[J].Journal of Power Sources,2011,196:5155.
[19] Lam L T;Haigh N P;Phyland C G et al.Failure mode of valve-regulated lead-acid batteries under high-rate partial-state-of-charge operation[J].Journal of Power Sources,2004,133:126.
[20] Lam L T .201 1 Gaston plantémedal acceptance speech[J].Journal of Power Sources,2012,207:5.
[21] 王力臻,张凯庆,张林森,王坤.超级电池负极的研究进展[J].蓄电池,2012(05):198-203.
[22] A. Cooper;J. Furakawa;L. Lam;M. Kellaway .The Ultrabattery-a New Battery Design For A New Beginning In Hybrid Electric Vehicle Energy Storage[J].Journal of Power Sources,2009(2):642-649.
[23] Lam L T;Louey R .Development of ultra-battery for hy-brid-electric vehicle applications[J].Journal of Power Sources,2006,158(2):1140.
[24] 联邦科学及工业研究组织 .改进的储能装置[P].中国,101 641809A,2010.
[25] Pavlov D;Nikolov P .Capacitive carbon and electrochemical lead electrode systems at the negative plates of leadeacid bat-teries and elementary processes on cycling[J].Journal of Power Sources,2013,242:380.
[26] D. Pavlov;P. Nikolov .Lead-Carbon Electrode with Inhibitor of Sulfation for Lead-Acid Batteries Operating in the HRPSoC Duty[J].Journal of the Electrochemical Society,2012(8):A1215-A1225.
[27] Fernández M;Trinidad F;Valenciano J et al.Optimization of the cycle life performance of VRLA batteries,wor-king under high rate,partial state of charge(HRPSOC)condi-tions[J].Journal of Power Sources,2006,158:1149.
[28] Valenciano J;Fernández M;Trinidad F et al.Lead-acid batteries for micro-and mild-hybrid applications[J].J Po-wer Sources,2009,187:599.
[29] P. T. Moseley;R. F. Nelson;A. F. Hollenkamp .The role of carbon in valve-regulated lead-acid battery technology[J].Journal of Power Sources,2006(1):3-10.
[30] Boden D P .Selection of pre-blended expanders for optimum leadracid battery performance[J].Journal of Power Sources,1998,73:89.
[31] Swogger S W;Everill P;Dubey D P et al.Discrete carbon nanotubes increase lead acid battery charge acceptance and performance[J].Journal of Power Sources,2014,261:55.
[32] Takai K.;Oga M.;Sato H.;Enoki T.;Ohki Y.;Taomoto A.;Suenaga K. Iijima S. .Structure and electronic properties of a nongraphitic disordered carbon system and its heat-treatment effects - art. no. 214202[J].Physical review, B. Condensed matter and materials physics,2003(21):4202-0.
[33] Tsuzuku T .Anisotropic electrical conduction in relation to the stacking disorder in graphite[J].CARBON,1979,17:293.
[34] Shiomi M;Funato T;Nakamura K et al.Effects of carbon in negative plates on cycle-life performance of valve-regulated lead/acid batteries[J].Journal of Power Sources,1997,64:147.
[35] Boden D P;Loosemore D V;Spence M A et al.Optimiza-tion studies of carbon additives to negative active material for the purpose of extending the life of VRLA batteries in high-rate partial-state-of-charge operation[J].Journal of Power Sources,2010,195:4470.
[36] Valenciano J;Sánchez A;Trinidad F et al.Graphite and fi-berglass additives for improving high-rate partial-state-of-charge cycle life of valve-regulated lead-acid batteries[J].Journal of Power Sources,2006,158:851.
[37] Ungar T;Gubicza J;Ribárik G et al.Microstructure of carbon blacks determined by X-ray diffraction profile analy-sis[J].CARBON,2002,40:929.
[38] Yan J;Wei T;Shao B et al.Electrochemical properties of graphene nanosheet/carbon black composites as electrodes for supercapacitors[J].CARBON,2010,48:1731.
[39] Donnet J B .Structure and reactivity of carbons:From car-bon black to carbon composites[J].CARBON,1982,20:267.
[40] Ebner E;Burow D;Panke J et al.Carbon blacks for lead-acid batteries in micro-hybrid applications - Studied by transmission electron microscopy and Raman spectroscopy[J].Journal of Power Sources,2013,222:554.
[41] Ebner E;Burow D;B?rger A et al.Carbon blacks for the extension of the cycle life in flooded lead acid batteries for micro-hybrid applications[J].Journal of Power Sources,2013,239:483.
[42] 赵瑞瑞,陈红雨.含铅硫酸环境活性炭电化学行为探究[J].电源技术,2011(08):981-984,1033.
[43] Takeuchi M;Koike K;Maruyama T et al.Electrochemical intercalation of tetraethylammonium tetrafluoroborate in-tokoh-treated carbon consisting of multi-graphene sheets for an electric doub le layer capacitor[J].ELECTROCHEMISTRY,1998,66(12):1311.
[44] 时志强,郭春雨,易炜,刘利,王成扬.新型微晶炭与商品活性炭的结构与电容性能[J].电源技术,2009(05):363-367.
[45] 张浩,曹高萍,杨裕生,徐斌,张文峰.电化学双电层电容器用新型炭材料及其应用前景[J].化学进展,2008(10):1495-1500.
[46] Guo H;Mao R;Xu L .Electrical activation of nano/micro-size crystallite carbon[J].Energy Procedia,2012,14:101.
[47] 裴卫兵;张传祥;邢宝林 等.超级电容器用新型微晶炭电极材料的研究进展[J].材料导报,2011,25(S18):307.
[48] Zhao R R;Shu D;Chen H Y .Behaviors of carbon in diffe-rent concentration of sulfuric acid[J].Adv Mater Res,2011,146-147:18.
[49] Yang K;Peng L;Shu D et al.Capacitive performance of a heteroatom-enriched activated carbon in concentrated sulfu-ric acid[J].Journal of Power Sources,2013,239:553.
[50] 侯超 .石墨烯基碳材料在铅碳电池中的应用研究[D].哈尔滨工业大学,2013.
[51] 刘宝生,马洪涛,陈锋强,马永泉,张凯,张绍辉,王振波.炭及负极添加剂对铅炭电池循环寿命的影响研究[J].蓄电池,2014(03):111-114.
[52] Moseley P T .Consequences of including carbon in the nega-tive plates of valve-regulated lead-acid batteries exposed to high-rate partial-state-of-charge operation[J].Journal of Power Sources,2009,191:134.
[53] Hollenkamp A F;Baldsing W G A;Lau S.Advance-ment of valve regulated lead-acid battery technology for hy-brid-electric and electric vehicles[A].NC,USA:Research Triangle Park,2002
[54] Calábek M;Micka K;Krivak P et al.Significance of car-bon additive in negative lead-acid battery electrodes[J].Journal of Power Sources,2006,158(2):864.
[55] K. Micka;M. Calabek;P. Baca;P. Krivak;R. Labus;R. Bilko .Studies of doped negative valve-regulated lead-acid battery electrodes[J].Journal of Power Sources,2009(1):154-158.
[56] M. Saravanan;M. Ganesan;S. Ambalavanan .A Modified Lead-Acid Negative Electrode for High-Rate Partial-State-of-Charge Applications[J].Journal of the Electrochemical Society,2012(4):A452-A458.
[57] Xiang J Y;Ding P;Zhang H et al.Beneficial effects of ac-tivated carbon additives on the performance of negative lead-acid battery electrode for high-rate partial-state-of-charge operation[J].Journal of Power Sources,2013,241:150.
[58] Lam L T;Ceylan H;Haigh N P et al.Influence of residual elements in lead on oxygen-and hydrogen-gassing rates of lead-acid batteries[J].Journal of Power Sources,2010,195:4494.
[59] Zhao L;Chen B;Wang D L .Effects of electrochemically ac-tive carbon and indium(III)oxide in negative plates on cycle performance of valve-regulated lead-acid batteries during high-rate partial-state-of-charge operation[J].Journal of Power Sources,2013,231:34.
[60] Zhao L;Chen B;Wu J et al.Study of electrochemically ac-tive carbon,Ga2 O3 and Bi2 O3 as negative additives for valve-regulated lead-acid batteries working under high-rate,par-tial-state-of-charge conditions[J].Journal of Power Sources,2014,248:1.
[61] 高云芳,宋云龙,任冬雷,王艳平.纳米Pb(PbO)/活性炭的制备及其在H2SO4电解液中的电化学行为[J].无机材料学报,2013(12):1301-1306.
[62] Fernández M;Valenciano J;Trinidad F et al.The use of activated carbon and graphite for the development of lead-acid batteries for hybrid vehicle applications[J].Journal of Power Sources,2010,195:4458.
[63] Hund T;Clark N;Baca W.UltraBattery? test results for utility cycling applications[A].Fort Lauderdale,USA:Redox Engineering, LLC,2008:195.
[64] Maria Skyllas-Kazacosa .(Keynote)Issues and challenges for implementation of large-scale Energy storage in australia[J].Electrochem Soc Trans,2013,50(18):1.
[65] BRIAN B. MCKEON;JUN FURUKAWA;SCOTT FENSTERMACHER .Advanced Lead-Acid Batteries and the Development of Grid-Scale Energy Storage Systems[J].Proceedings of the IEEE,2014(6):951-963.
[66] Wood J.Integrating renewables into the grid:Applying Ul-traBattery? technology in MW scale energy storage solu-tions for continuous variability management[A].Auckland:IEEE,2012:1.
[67] Wood John.UltraBattery cloud energy storage for the grid:Positioning data center and telecommunication backup re-sources as smart grid assets that support[A].Hamburg,Germa-ny:VDE,2013:1.
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