A model for SOFC anode performance

被引:15
|
作者
Kulikovsky, A. A. [1 ,2 ]
机构
[1] Res Ctr Julich, Inst Energy Res Fuel Cells IEF 3, D-52425 Julich, Germany
[2] Moscow MV Lomonosov State Univ, Ctr Res Comp, Moscow 119991, Russia
关键词
SOFC anode; Activation resistivity; Modeling; OXIDE FUEL-CELL; DIRECT NUMERICAL-SIMULATION; ELECTRODES; TEMPERATURE; TRANSPORT; MICROSTRUCTURE; RECONSTRUCTION; POLARIZATION; FLOW; UNIT;
D O I
10.1016/j.electacta.2009.06.054
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
A model for anode performance of a planar anode-supported SOFC is developed. The model includes Butler-Volmer relation for the hydrogen oxidation, Ohm's law for ionic current and equation of hydrogen mass balance in the anode channel. We show that the regime of anode operation depends on the relation between the cell current density j and the critical current density j(crit). Analytical solutions to the system of governing equations for the case of "low" (j<j(crit)) and "high" (j >> j(crit)) currents are derived. In the "low-current" regime the anode polarization voltage is proportional to cell current, which justifies the notion of anodic activation resistivity R(a). Full hydrogen utilization increases the value of R(a) by a factor of 2. In the "high-current" regime polarization voltage depends on cell current logarithmically. with the effective Tafel slope being twice the kinetic value (doubling of Tafel slope). In this regime 100% hydrogen utilization leads to a constant similar or equal to 230-mV shift of polarization curve as a whole. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:6686 / 6695
页数:10
相关论文
共 50 条
  • [1] An improved anode micro model of SOFC
    Xia, ZT
    Chan, SH
    Khor, KA
    ELECTROCHEMICAL AND SOLID STATE LETTERS, 2004, 7 (03) : A63 - A65
  • [2] Performance of an anode-supported SOFC with anode functional layers
    Chen, Kongfa
    Chen, Xiangjun
    Lue, Zhe
    Ai, Na
    Huang, Xiqiang
    Su, Wenhui
    ELECTROCHIMICA ACTA, 2008, 53 (27) : 7825 - 7830
  • [3] Improvement of SOFC performance using a microtubular, anode-supported SOFC
    Suzuki, T
    Yamaguchi, T
    Fujishiro, Y
    Awano, M
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2006, 153 (05) : A925 - A928
  • [4] Performance of anode supported planar SOFC cells
    Ghosh, D
    Wang, G
    Brule, R
    Tang, E
    Huang, P
    SOLID OXIDE FUEL CELLS (SOFC VI), 1999, 99 (19): : 822 - 829
  • [5] Performance of YSZ-supported anode for SOFC substrates
    Nakamura, A
    Yokota, S
    Shimizu, Y
    SOLID OXIDE FUEL CELLS VIII (SOFC VIII), 2003, 2003 (07): : 662 - 669
  • [6] Increase of Anode Performance of SOFC by Reverse Current Treatment
    Klotz, D.
    Butz, B.
    Leonide, A.
    Gerthsen, D.
    Ivers-Tiffee, E.
    IONIC AND MIXED CONDUCTING CERAMICS 7, 2010, 28 (11): : 141 - 150
  • [7] Preparation and performance of composite anode NiO @ GDC for SOFC
    Luo, Ling-Hong
    Ye, Hui-Hua
    Hu, Zhi-Min
    Sun, Liang-Liang
    Shi, Ji-Jun
    Cheng, Liang
    Yu, Hui
    Rengong Jingti Xuebao/Journal of Synthetic Crystals, 2015, 44 (08): : 2118 - 2122
  • [8] Improved SOFC performance with continuously graded anode functional layer
    Wang, Zhenhua
    Zhang, Naiqing
    Qiao, Jinshuo
    Sun, Kening
    Xu, Ping
    ELECTROCHEMISTRY COMMUNICATIONS, 2009, 11 (06) : 1120 - 1123
  • [9] SOFC anode kinetics
    Mogensen, M
    Sunde, S
    Primdahl, S
    HIGH TEMPERATURE ELECTROCHEMISTRY: CERAMICS AND METALS, 1996, : 77 - 100
  • [10] LSCM-YSZ nanocomposites for a high performance SOFC anode
    Jung, Inyong
    Lee, Daehee
    Lee, Seong Oh
    Kim, Dongha
    Kim, Joosun
    Hyun, Sang-Hoon
    Moon, Jooho
    CERAMICS INTERNATIONAL, 2013, 39 (08) : 9753 - 9758