Multimodal mass transfer in solid-oxide fuel-cells

被引:24
|
作者
Garcia-Camprubi, M.
Sanchez-Insa, A.
Fueyo, N. [1 ]
机构
[1] Univ Zaragoza, Fluid Mech Grp, Zaragoza 50018, Spain
关键词
Mass transfer; Porous media; Mathematical modeling; Numerical analysis; Solid-oxide fuel-cell; Energy utilization; DUSTY-GAS; INTERMEDIATE TEMPERATURE; TRANSPORT; ANODE; MODEL; PERFORMANCE; FABRICATION; BEHAVIOR;
D O I
10.1016/j.ces.2009.11.006
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A new model and algorithm for the numerical simulation of multicomponent mass-transfer in solid-oxide fuel-cells (SOFCs) is presented. The model does not neglect any of the possible molecular mass-transfer mechanisms present in a SOFC. It takes into account convection and molecular-diffusion phenomena in the channels, and convection, molecular diffusion and Knudsen diffusion in the porous electrodes. The model does not require any of the constraining hypotheses present in previously published ones. Its noteworthy features are: (i) pressure is not considered as constant (in any direction) in the channel or in the electrode; (ii) global mass transfer through the porous media is modeled by means of the Dusty Gas Model, without any limiting assumption on the number of species in the multicomponent gas mixture; (iii) the physical phenomena in channel and porous medium are coupled through boundary conditions and solved simultaneously; (iv) the model can be used for both the anode and the cathode. The algorithm is designed to simulate multidimensional domains and is applicable to both planar and tubular cells. It has been implemented using OpenFOAM (open field operation and manipulation), an open-source finite-volume-method based CFD-tool. The model performance has been successfully validated by comparison with experimental data reported in the literature for both main types of SOFC, planar and tubular. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1668 / 1677
页数:10
相关论文
共 50 条
  • [41] Synthesis of solid-oxide fuel cells using microwave sintering
    Takahashi, S.
    Suda, S.
    Jono, K.
    Kawahara, K.
    Doi, A.
    American Ceramic Society Bulletin, 2006, 85 (02): : 9201 - 9204
  • [42] Dynamic modeling in solid-oxide fuel cells controller design
    Lu, N.
    Li, Q.
    Sun, X.
    Khaleel, M. A.
    2007 IEEE POWER ENGINEERING SOCIETY GENERAL MEETING, VOLS 1-10, 2007, : 234 - +
  • [43] Double perovskites as anode materials for solid-oxide fuel cells
    Huang, YH
    Dass, RI
    Xing, ZL
    Goodenough, JB
    SCIENCE, 2006, 312 (5771) : 254 - 257
  • [44] Solid-oxide fuel cells and CHP - An environmental solution in the making
    Drenckhahn, W
    POWER ENGINEERING JOURNAL, 1996, 10 (02): : 67 - 72
  • [45] Future energy, fuel cells, and solid-oxide fuel-cell technology
    Nguyen Q. Minh
    Y. Shirley Meng
    MRS Bulletin, 2019, 44 : 682 - 683
  • [46] Advances, aging mechanisms and lifetime in solid-oxide fuel cells
    Tu, HY
    Stimming, U
    JOURNAL OF POWER SOURCES, 2004, 127 (1-2) : 284 - 293
  • [47] BISMUTH OXIDE-BASED SOLID ELECTROLYTES FOR FUEL-CELLS
    AZAD, AM
    LAROSE, S
    AKBAR, SA
    JOURNAL OF MATERIALS SCIENCE, 1994, 29 (16) : 4135 - 4151
  • [48] MATERIALS FOR HIGH-TEMPERATURE SOLID OXIDE FUEL-CELLS
    SINGHAL, SC
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1987, 134 (8B) : C414 - C414
  • [49] REDUCED MAGNESIUM TITANATE ELECTRODES FOR SOLID OXIDE FUEL-CELLS
    FAGG, DP
    FRAY, SM
    IRVINE, JTS
    SOLID STATE IONICS, 1994, 72 (pt 2) : 235 - 239
  • [50] METHANE STEAM REFORMING KINETICS FOR SOLID OXIDE FUEL-CELLS
    ACHENBACH, E
    RIENSCHE, E
    JOURNAL OF POWER SOURCES, 1994, 52 (02) : 283 - 288