Simulation of the current density distribution for a PEMFC by using measured electrochemical and physical properties of the membrane

被引:23
|
作者
Araki, T [1 ]
Koori, H [1 ]
Taniuchi, T [1 ]
Onda, K [1 ]
机构
[1] Toyohashi Univ Technol, Dept Elect & Elect Engn, Tenpaku, Toyohashi, Aichi 4418580, Japan
关键词
polymer electrolyte fuel cell; current density distribution; membrane properties measurement; numerical model of PEFC;
D O I
10.1016/j.jpowsour.2004.12.058
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In order to grasp properly PEFC power generation performances, it is necessary to know aspects of water management such as transmissivity and electro-osmotic coefficient of water vapor through the membrane, and factors for power loss such as active and resistive overpotentials. In this study we have measured these factors to analyze our experimental results of PEFC power generation tests by our two-dimensional simulation code. It considers simultaneously the mass, charge and energy conservation equations, and the equivalent electric-circuit for PEFC to give numerical distributions of hydrogen/oxygen concentrations, current density, and gas/cell-component temperatures. The numerical distributions of current density under various operating conditions agreed well with the measured distributions by segmented electrodes, which had grooves for hydrogen/oxygen supply and were molded in our test cell being electrically insulated. Hydrogen/oxygen concentration changes measured by gas chromatography along the gas supply grooves gave also the experimental current distributions, which coincided almost with those by the segmented electrodes. Factors to correct the small difference between the measured and the calculated are also discussed from the stand point of the physical meaning of the calculated results considering factors which are not taken into account in our code. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:60 / 66
页数:7
相关论文
共 50 条
  • [31] Proton exchange membrane fuel cell (PEMFC) operation in high current density (HCD): Problem, progress and perspective
    Cai, Fengyang
    Cai, Shanshan
    Tu, Zhengkai
    ENERGY CONVERSION AND MANAGEMENT, 2024, 307
  • [32] Determination of current density distribution in proton exchange membrane fuel cells
    Candusso, D
    Poirot-rouvezier, JP
    Bador, B
    Rullière, E
    Soulier, R
    Voyant, JY
    EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2004, 25 (01): : 67 - 74
  • [34] Physical and electrochemical properties of PVA/TiO2 nanocomposite membrane
    Abdel-Hady, Esam E.
    Mohamed, Hamdy F. M.
    Abdel-Hamed, Mohamed Osman
    Gomaa, Mahmoud M.
    ADVANCES IN POLYMER TECHNOLOGY, 2018, 37 (08) : 3842 - 3853
  • [35] Spatial characteristics of local current density distribution and the impact of relative humidity during airborne ammonia contaminates PEMFC
    Jing, Yuan
    Ma, Yunyang
    Ji, Weichen
    Cai, Xin
    Lin, Rui
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 83 : 246 - 256
  • [36] Structural and nanomechanical properties of a zeolite membrane measured using nanoindentation
    Charitidis, C. A.
    Koumoulos, E. P.
    Nikolakis, V.
    Dragatogiannis, D. A.
    THIN SOLID FILMS, 2012, 526 : 168 - 175
  • [37] POTENTIAL AND CURRENT-DENSITY DISTRIBUTION IN ELECTROCHEMICAL REACTORS WITH PARALLEL PLATE ELECTRODES
    HERTWIG, K
    BREME, J
    ROUSAR, I
    HUNGARIAN JOURNAL OF INDUSTRIAL CHEMISTRY, 1987, 15 (02): : 149 - 159
  • [38] A Multiple Working Electrode for Electrochemical Cells: A Tool for Current Density Distribution Studies
    Ng, See-How
    La Mantia, Fabio
    Novak, Petr
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2009, 48 (03) : 528 - 532
  • [39] DIGITAL-SIMULATION OF ASSOCIATED AND NONASSOCIATED LIQUID MEMBRANE ELECTROCHEMICAL PROPERTIES
    STOVER, FS
    BUCK, RP
    BIOPHYSICAL JOURNAL, 1976, 16 (07) : 753 - 770
  • [40] Physical properties of frozen soils measured using ultrasonic techniques
    Sheng, Y
    Wen, Z
    Peng, W
    Fukuda, M
    PERMAFROST, VOLS 1 AND 2, 2003, : 1035 - 1038