High-temperature fuel cells, their status, fuels and applications

被引:0
|
作者
Svoboda, K [1 ]
Hartman, N [1 ]
Trnka, O [1 ]
Cermák, J [1 ]
机构
[1] Acad Sci Czech Republ, Inst Chem Proc Fundamentals, CR-16502 Prague 6, Czech Republic
来源
CHEMICKE LISTY | 2002年 / 97卷 / 01期
关键词
D O I
暂无
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This review updates information on the state of development, properties, materials and possible applications of two basic types of high-temperature fuel cells: solid oxide fuel cells (SOFC) and molten carbonate fuel cells (MCFC). The main fuels for such cells are still hydrogen, carbon monoxide and their mixtures, which can be produced from natural gas by steam reforming. A new potential liquid fuel for such cells is in particular methanol. Hydrocarbon fuels have to be reformed with steam prior to utilisation in high-temperature fuel cells. Solid fuels, such as coal and wood, can be practically used as fuels for the cells only after gasification and efficient cleaning of the gaseous fuel. The optimum temperature for MCFC is about 650 degreesC, for SOFC usually between 750 and 900 degreesC, depending on materials. The theoretical thermodynamic maximum efficiencies of the fuel cells for conversion of chemical energy to useful work is high, exceeding 66%. The real behaviour and efficiency depend on internal losses, construction and current load of the cells. The highest attainable current densities in electric circuits with MCFC and SOFC are still relatively low, below 800-1000 mA.cm(-2). Great potential of high-temperature fuel cells is in utilization of waste heat of the produced gases in steam boiler, gas turbine (for pressurized systems) and in cogeneration of electrical energy and heat. Overall real attainable efficiency of the heat-to-power conversion estimated for such comb ined systems exceeds 60 %.
引用
收藏
页码:9 / 23
页数:15
相关论文
共 50 条
  • [21] Materials for high-temperature fuel cells - Discussion
    Dell, RM
    Steele, BCH
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1996, 354 (1712): : 1710 - 1710
  • [22] THERMODYNAMICS OF HIGH-TEMPERATURE FUEL-CELLS
    LECOANET, A
    REVUE GENERALE DE THERMIQUE, 1977, 16 (188-): : 591 - 608
  • [23] High-Temperature Fuel Cells Hardware Experience
    Yuh, C.
    Chen, L.
    Franco, A.
    Farooque, M.
    FUEL CELL SEMINAR 2012, 2013, 51 (01): : 57 - 67
  • [24] Ethyl alcohol vapor as a fuel in high-temperature fuel cells
    Novikov, GI
    Gamanovich, NM
    RUSSIAN JOURNAL OF APPLIED CHEMISTRY, 1997, 70 (07) : 1041 - 1043
  • [25] Thermodynamic analysis of biofuels as fuels for high temperature fuel cells
    Milewski, Jaroslaw
    Bujalski, Wojciech
    Lewandowski, Janusz
    ARCHIVES OF THERMODYNAMICS, 2012, 33 (04) : 41 - 65
  • [26] SIMNAD MT - MATERIALS AND FUELS FOR HIGH-TEMPERATURE NUCLEAR ENERGY APPLICATIONS
    不详
    PYRODYNAMIC, 1965, 2 (01): : 108 - &
  • [27] Power applications of high-temperature superconductors: Status and perspectives
    Malozemoff, AP
    Maguire, J
    Gamble, B
    Kalsi, S
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2002, 12 (01) : 778 - 781
  • [29] Synthesis and studies of polybenzimidazoles for high-temperature fuel cells
    Ponomarev, I. I.
    Razorenov, D. Yu.
    Ponomarev, Iv. I.
    Volkova, Yu. A.
    Skupov, K. M.
    RUSSIAN JOURNAL OF ELECTROCHEMISTRY, 2014, 50 (07) : 694 - 699
  • [30] Synthesis and studies of polybenzimidazoles for high-temperature fuel cells
    I. I. Ponomarev
    D. Yu. Razorenov
    Iv. I. Ponomarev
    Yu. A. Volkova
    K. M. Skupov
    Russian Journal of Electrochemistry, 2014, 50 : 694 - 699