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化学进展 2006, Vol. 18 Issue (0708): 1026-1033 前一篇   后一篇

• 综述与评论 •

直接碳氢化合物固体氧化物燃料电池

刘江   

  1. 华南理工大学化学科学学院 广州 510640 
  • 收稿日期:2006-04-01 修回日期:2006-05-15 出版日期:2006-08-24 发布日期:2006-08-24
  • 通讯作者: 刘江

Direct-hydrocarbon Solid Oxide Fuel Cell

Jiang Liu   

  1. College of Chemistry, South China University of Technology, Guangzhou 510640, China
  • Received:2006-04-01 Revised:2006-05-15 Online:2006-08-24 Published:2006-08-24
  • Contact: Jiang Liu
直接碳氢化合物固体氧化物燃料电池(D-HC SOFC)具有能量密度高和运行成本低等特点,可望在便携式电源等方面得到广泛应用,已成为国际上SOFC领域的研究热点。本文对D-HC SOFC进行了热力学分析,综述了目前国际上在D-HC SOFC研究方面的现状,指出现有的D-HC SOFC研究工作绝大多数都是围绕着如何避免积碳进行。围绕着避免积碳的三条途径即降低工作温度、采用合适的催化剂和促进电化学氧化,对D-HC SOFC研究进行了阐述和讨论。文中还提到一些阳极反应机理方面的研究,并对今后的D-HC SOFC工作提出了作者的观点,认为应该在D-CH SOFC电池组方面和涉及到气体分布的阳极反应机理方面做更多工作。
Direct-hydrocarbon solid oxide fuel cell (D-HC SOFC) can directly operate on low-cost and readily available hydrocarbon fuels without reforming. With high power density and low operation cost, D-HC SOFC has the potential of greatly speeding the application of solid oxide fuel cells (SOFC) in portable devices, back-up power supplies, auxiliary power units (APU) and distributed-power stations. At the beginning of this paper, the principle of SOFC is briefly introduced followed by a thermodynamic analysis on the feasibility of D-HC SOFC. Then, the status of D-HC SOFC research and development is reviewed. It is showed that most of the research on D-HC SOFC has been focused on avoiding carbon deposition caused by pyrolysis of hydrocarbon fuels at elevated operating temperatures. There are three ways to remove carbon in D-HC SOFC: lowering operating temperature, using proper catalyst that can suppress carbon formation reaction in anodes, and promoting electrochemical oxidation by running SOFC at large enough current. Some works on the anode reaction mechanism are also described. Finally, the author’s view on further research and development on D-HC SOFC is presented, that more work is required in D-HC SOFC stacks and anode reaction mechanisms associated with gas (including reactants and products and any other kind of gases produced during SOFC operation) distributions in SOFC.

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[ 1 ] 吴川(Wu C) , 张华民(Zhang HM) , 衣宝廉(Yi B L) . 化学进展(Progress in Chemistry) , 2005 , 17(3) : 423 —429
[2] Armor J N. Appl . Catal . A-Gen. , 1999 , 176 : 159 —176
[3] Schulte I , Hart D , Vorst R. Int . J . Hydrogen Energy , 2004 , 29 :677 —685
[4] Ogden J M. Annu. Rev. Energ. Env. , 1999 , 24 : 227 —279
[5] 张斌(Zhang B) , 倪维斗(Ni W D) , 李政(Li Z) . 中国动力工程学报( Chinese Journal of Power Engineering ) , 2005 , 25(1) : 141 —146
[6] 左政(Zuo Z) , 华贲(Hua B) . 煤气与热力( Gas and Heat) ,2005 , 25(1) : 35 —42
[7] Larminie J , Dicks A. Fuel Cell Systems Explained. Chichester :John Wiley &Sons , Ltd. , 2002. 188 —199
[8] 乔金硕(Qiao J S) , 孙克宁(Sun K N) , 张乃庆(Zhang N Q) ,周德瑞( Zhou R D) . 化工进展( Chemical Industry and Engineering Progress) , 2004 , 23(11) : 1189 —1194
[9] Nabae Y, Yamanaka I , Hatano M, et al . J . Electrochem. Soc. ,2006 , 153 (1) : A140 —A145
[10] Larrondo S , Vidal M A , Irigoyen B , et al . Catalysis Today ,2005 , 107 (8) : 53 —59
[11] Costa-Nunes O , Gorte R J , Vohs J . Power Sources , 2005 , 141(2) : 241 —249
[12] Krishnan V V , McIntosh S , Gorte R J , et al . Solid State Ionics ,2004 : 166 (1/2) : 191 —197
[13] McIntosh S , He H P , Lee S I , et al . J . Electrochem. Soc. ,2004 , 151 (4) : A604 —A608
[14] McIntosh S , Gorte R J . Chem. Rev. , 2004 , 104 : 4845 —4865
[15] Minh N Q. J . Am. Ceram. Soc. , 1993 , 76(3) : 563 —588
[16] 江义(Jiang Y) , 李文钊(Li W Z) , 王世忠(Wang S Z) . 化学进展(Progress in Chemistry) , 1997 , 9 (4) : 387 —396
[17] Sasaki K, Teraoka Y. J . Electrochem. Soc. , 2003 , 150 (7) :A878 —A884
[18] Sasaki K, Teraoka Y. J . Electrochem. Soc. , 2003 , 150 (7) :A885 —A888
[19] Finnerty C M, Coe N J , Cunningham R H , Ormerod R M.Catalysis Today , 1998 , 46 : 137 —145
[20] Murray E P , Tsai T , Barnett S A. Nature , 1999 , 400 : 649 —651
[21] Park S , Vohs J M, Gorte R J . Nature , 2000 , 404 : 265 —267
[22] Murray E P , Tsai T , Barnett S A. Proc. 6th Int . Symp. on Solid Oxide Fuel Cells ( eds. Singhal S C , Dokiya M ) . Pennington :Electrochem. Soc. , 1999. 1001 —1010
[23] Steele B C H , Middleton P H , Tudkin R A. Solid State Ionics ,1990 , 40/41 : 388 —393
[24] Godickemeier M, Sasaki K, Gauckler L J . Proc. 4th Int . Symp.on Solid Oxide Fuel Cells (eds. Dokiya M, Yamamoto O , Tagawa H , Singhal S C) . Pennington : Electrochem. Soc. , 1995.1072 —1081
[25] Hori C E , Permana H , Ng K Y S , et al . Appl . Catal . B , 1998 ,16 (2) : 105 —117
[26] Xia C R , Chen F L , Liu M L. Electrochem. Solid State Letters ,2001 , 4(5) : A52 —A54
[27] Jiang Y, Virkar A V. J . Electrochem. Soc. , 2001 , 148 :A706 —A709
[28] Park S , Gorte R J , Vohs J M. Appl . Catal . A , 2000 , 200 : 55 —61
[29] Kim H , Park S , Vohs J M, Gorte R J . J . Electrochem. Soc. ,2001 , 148 : A693 —A695
[30] Wang C , Worrell W L , Park S , Vohs J M, Gorte R J . J .Electrochem. Soc. , 2001 , 148 : A864 —A868
[31] Gorte R J , Vohs J M, McIntosh S. Solid State Ionics , 2004 , 175(1/4) : 1 —6
[32] Atkinson A , Barnett S A , Gorte R J , et al . Nature Materials ,2004 , 3 (1) : 17 —27
[33] Gorte R J , Vohs J M. J . Catal . , 2003 , 216 (1/2) : 477 —486
[34] Gorte R J , Kim H , Vohs J M. J . Power Sources , 2002 , 106 (1/2) : 10 —15
[35] Itome M, Nelson A E. Catalysis Letters , 2006 , 106 : 21 —27
[36] Baker R T , Metcalfe I S. Appl . Catal . A , 1995 , 126 : 297 —317
[37] Norby T , Osborg P A , Dyrlie O , Hildrum R , Seiersten M,Glenne R. in Proc. 1st European Solid Oxide Fuel Cell Forum (ed. Bossel U) . Kinzel , Gottingen , 1994. 217 —221
[38] Primdahl S , Hansen J R , Grahl-Madsen L , Larsen P H. J .Electrochem. Soc. , 2001 , 148 : A74 —A81
[39] Marina O A , Bagger C , Primdahl S , et al . Solid State Ionics ,1999 , 123 (1/4) : 199 —208
[40] Liu J , Madsen B D , Ji Z , Barnett S A. Electrochem. Solid State Letters , 2002 , 5 (6) : A122 —A124
[41] Huang Y H , Dass R I , Xing Z L , Goodenough J B. Science ,2006 , 312 (5771) : 254 —257
[42] Liu J , Barnett S A. Solid State Ionics , 2003 , 158(1P2) : 11 —16
[43] Lin Y B , Zhan Z L , Liu J , Barnett S A. Solid State Ionics ,2005 , 176 : 1827 —1835
[44] Aida T , Abudala A , Ihara M, Komiyama H , Yamada K. Proc.4th Int . Symp. on Solid Oxide Fuel Cells ( eds. Dokiya M,Yamamoto O , Tagawa H , Singhal S C ) . Pennington :Electrochem. Soc. , 1995. 801 —809
[45] Horita T , Sakai N , Kawada T , Yokokawa H , Dokiya M. J .Electrochem. Soc. , 1996 , 143 : 1161 —1168
[46] Zhan Z L , Barnett S A. Solid State Ionics , 2005 , 176 (9/10) :871 —879
[47] Murray E P , Harris S J , Liu J , et al . Electrochem. Solid St . ,2005 , 8 (10) : A531 —A533
[48] Zhan Z L , Barnett S A. Science , 308 (5723) : 844 —847
[49] Zhan ZL , Liu J , Barnett S A. Appl . Catal . A , 2004 , 262 (2) :255 —259
[50] 马紫峰(Ma Z F) , 黄碧纯(Huang B C) , 廖小珍(Liao X Z)等. 电源技术(Chinese J . Power Sources) , 1999 , 23 (3) :164 —166
[51] 马紫峰(Ma Z F) , 林维明(Lin W M) , 黄传荣(Huang C R)等. 电源技术(Chinese J . Power Sources) , 1994 , (1) : 10 —19
[52] 马紫峰(Ma Z F) , 林卓 (Lin Z Y) , 张煜(Zhang Y) , 林维明(Lin WM) . 电源技术(Chinese J . Power Sources) , 1996 ,20 (3) : 99 —103
[53] 毕忠合(Bi Z H) , 程谟杰(Cheng M J ) , 吴合进(Wu H J )等. 高等学校化学学报( Chemical Journal of Chinese Universities) , 2005 , 26 (6) : 1110 —1113
[54] Wang Z W, Cheng M J , Dong Y L , et al . Solid State Ionics ,2005 , 176 (35/36) : 2555 —2561
[55] Zhang Y, Liu B , Tu B F , et al . Solid State Ionics , 2005 , 176(29/30) : 2193 —2199
[56] Wang Y S , Nie H W, Wang S R , et al . Materials Letters , 2006 ,60 (9/10) : 1174 —1178
[57] Zheng R , Zhou X M, Wang S R , et al . J . Power Sources , 2005 ,140 (2) : 217 —225
[58] Yin YH , Li S Y, Xia C R , et al . Electrochimica Acta , 2006 , 51(13) : 2594 —2598
[59] 闫瑞强(Yan R Q) , 李灵(Li L) , 刘杏芹(Liu X Q) 等. 无机化学学报(Chinese Journal of Inorganic Chemistry) , 2006 , 22(3) : 542 —545
[60] Xu X Y, Xia C R , Mao G L , et al . Solid State Ionics , 2005 , 176(17/18) : 1513 —1520
[61] Xu J H , Huang X Q , Lu Z , et al . Acta Chimica Sinica , 2006 ,64 (5) : 449 —452
[61] Zhang Y H , Huang X Q , Lu Z , et al . Solid State Ionics , 2006 ,177 (3/4) : 281 —287
[63] Wei B , Lu Z , Li S Y, et al . Electrochem. Solid St . , 2005 , 8(8) : A428 —A431
[64] Zhang J D , Ji Y, Gao H B , et al . J . Alloys Comp. , 2005 , 395(1/2) : 322 —325
[65] He T M, Guan P F , Cong L G, et al . J . Alloys Comp. , 2005 ,393 (1/2) : 292 —298

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