PEM fuel cell model and simulation in Matlab-Simulink based on physical parameters

被引:136
作者
Abdin, Z. [1 ]
Webb, C. J. [1 ]
Gray, E. MacA. [1 ]
机构
[1] Griffith Univ, Queensland Micro & Nanotechnol Ctr, Nathan, Qld 4111, Australia
关键词
Fuel cell; Anode; Cathode; PEM; Overpotential; Modelling; FLOW MATHEMATICAL-MODEL; POLYMER ELECTROLYTE; OXYGEN REDUCTION; WATER TRANSPORT; SCHROEDERS-PARADOX; MEMBRANE; EXCHANGE; PERFORMANCE; TEMPERATURE; CATHODE;
D O I
10.1016/j.energy.2016.10.033
中图分类号
O414.1 [热力学];
学科分类号
摘要
An advanced PEM fuel cell mathematical model is described and realised in four ancillaries in the Matlab -Simulink environment. Where possible, the model is based on parameters with direct physical meaning, with the aim of going beyond empirically describing the characteristics of the fuel cell. The model can therefore be used to predict enhanced performance owing to, for instance, improved electrode materials, and to relate changes in the measured performance to internal changes affecting influential physical parameters. Some simplifying assumptions make the model fairly light in computational demand and therefore amenable to extension to simulate an entire fuel-cell stack as part of an energy system. Despite these assumptions, the model emulates experimental data well, especially at high current density. The influences of pressure, temperature, humidification and reactant partial pressure on cell performance are explored. The dominating effect of membrane hydration is clearly revealed. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1131 / 1144
页数:14
相关论文
共 71 条
  • [1] RETRACTED: Solar hydrogen hybrid energy systems for off-grid electricity supply: A critical review (Retracted article. See vol. 84, pg. 172, 2018)
    Abdin, Z.
    Webb, C. J.
    Gray, E. MacA.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 52 : 1791 - 1808
  • [2] Modelling and simulation of a proton exchange membrane (PEM) electrolyser cell
    Abdin, Z.
    Webb, C. J.
    Gray, E. MacA
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (39) : 13243 - 13257
  • [3] Analysis of PEM (Polymer Electrolyte Membrane) fuel cell cathode two-dimensional modeling
    Abdollahzadeh, M.
    Pascoa, J. C.
    Ranjbar, A. A.
    Esmaili, Q.
    [J]. ENERGY, 2014, 68 : 478 - 494
  • [4] PREPARATION AND CHARACTERIZATION OF SPE COMPOSITES FOR ELECTROLYZERS AND FUEL-CELLS
    ALDEBERT, P
    NOVELCATTIN, F
    PINERI, M
    MILLET, P
    DOUMAIN, C
    DURAND, R
    [J]. SOLID STATE IONICS, 1989, 35 (1-2) : 3 - 9
  • [5] PARAMETRIC MODELING OF THE PERFORMANCE OF A 5-KW PROTON-EXCHANGE MEMBRANE FUEL-CELL STACK
    AMPHLETT, JC
    BAUMERT, RM
    MANN, RF
    PEPPLEY, BA
    ROBERGE, PR
    RODRIGUES, A
    [J]. JOURNAL OF POWER SOURCES, 1994, 49 (1-3) : 349 - 356
  • [6] AMPHLETT JC, 1995, J ELECTROCHEM SOC, V142, P1, DOI 10.1149/1.2043866
  • [7] [Anonymous], 2012, PEM FUEL CELLS THEOR
  • [8] Validation of cell voltage and water content in a PEM (polymer electrolyte membrane) fuel cell model using neutron imaging for different operating conditions
    Antonio Salva, J.
    Iranzo, Alfredo
    Rosa, Felipe
    Tapia, Elvira
    [J]. ENERGY, 2016, 101 : 100 - 112
  • [9] ATKINS P., 1992, ELEMENTS PHYS CHEM
  • [10] Fuel cell basic chemistry, electrochemistry and thermodynamics
    Barbir, Frano
    [J]. MINI-MICRO FUEL CELLS: FUNDAMENTALS AND APPLICATIONS, 2008, : 13 - 26