Modeling of transport phenomena in a fuel cell anode

被引:0
作者
Coutelieris, Frank A. [1 ]
机构
[1] Univ Western Macedonia Bakola & Sialvera, Dept Engn & Management Energy Resources, Kozani 50100, Greece
来源
DIFFUSION IN SOLIDS AND LIQUIDS III | 2008年 / 273-276卷
关键词
SOFC; anode; catalyst layer; heat transfer; mass transport;
D O I
10.4028/www.scientific.net/DDF.273-276.820
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A mathematical model for the simulation of the transport phenomena occurred in the anode of a typical fuel cell is presented here. The model initially considers a simple one-dimensional geometry where the mass transport equation is combined with a Tafel-type description for the current density. By assuming isothermal conditions, the numerical solution of the differential equations was achieved with the use of a non-linear shooting scheme in conjunction with the multidimensional Newton algorithm. The space was discretized through a constant-step mesh while the resulting nonlinear system of ordinary differential equations was solved by using the 4th order Runge-Kutta method. The whole algorithm was implemented by developing a new FORTRAN code. In addition, a planar two-dimensional geometry is also considered, where the mass transport is described by the convection-diffusion equation within the catalyst layer together with the Navier-Stokes equation for laminar flow conditions and the electrochemical effects, while the convective heat transfer within the developed diffusion layer is also taken into account. This approach has been numerically implemented and solved by using the finite volume method being applicable through the CFD-RC (c) commercial package. For the sake of simplicity, the feedstream of the fuel cell was assumed to be a hydrogen-rich mixture (H-2 >90%) for all cases. Both SOFC and PEM type fuel cells were considered in this study, while the results are presented in terms of fuel concentration, produced current density and overpotential.
引用
收藏
页码:820 / 828
页数:9
相关论文
共 12 条
  • [1] AMES WF, 1977, NUMERICAL METHODS PA
  • [2] Bockris J., 1997, MODERN ELECTROCHEMIS
  • [3] A complete polarization model of a solid oxide fuel cell and its sensitivity to the change of cell component thickness
    Chan, SH
    Khor, KA
    Xia, ZT
    [J]. JOURNAL OF POWER SOURCES, 2001, 93 (1-2) : 130 - 140
  • [4] Review and comparison of approaches to proton exchange membrane fuel cell modeling
    Cheddie, D
    Munroe, N
    [J]. JOURNAL OF POWER SOURCES, 2005, 147 (1-2) : 72 - 84
  • [5] HIRSCHENHOFER JH, 1997, FUEL CELL HDB
  • [6] Modeling the catalyst layer of a PEM fuel cell cathode using a dimensionless approach
    Jeng, KT
    Kuo, CP
    Lee, SF
    [J]. JOURNAL OF POWER SOURCES, 2004, 128 (02) : 145 - 151
  • [7] Modeling and simulation of a direct methanol fuel cell anode
    Jeng, KT
    Chen, CW
    [J]. JOURNAL OF POWER SOURCES, 2002, 112 (02) : 367 - 375
  • [8] Keller H.B., 1992, NUMERICAL METHODS 2
  • [9] A new dynamic model for predicting transient phenomena in a PEM fuel cell system
    Pathapati, PR
    Xue, X
    Tang, J
    [J]. RENEWABLE ENERGY, 2005, 30 (01) : 1 - 22
  • [10] Innovative design to improve the power density of a solid oxide fuel cell
    Ramakrishna, P. A.
    Yang, Shi
    Sohn, C. H.
    [J]. JOURNAL OF POWER SOURCES, 2006, 158 (01) : 378 - 384