Modeling and sensitivity analysis of high temperature PEM fuel cells by using Comsol Multiphysics

被引:97
作者
Sezgin, Berna [1 ]
Caglayan, Dilara Gulcin [1 ]
Devrim, Yilser [2 ]
Steenberg, Thomas [3 ]
Eroglu, Inci [1 ]
机构
[1] Middle E Tech Univ, Dept Chem Engn, Univ Site Mah,Dumlupmar Blv, TR-06800 Ankara, Turkey
[2] Atilim Univ, Dept Energy Syst Engn, TR-06830 Ankara, Turkey
[3] Danish Power Syst Ltd, DK-3490 Kvistgaard, Denmark
关键词
High temperature PEM fuel cell; Comsol Multiphysics; Proton conductivity; PBI membrane; Modeling; MEMBRANES; POLYBENZIMIDAZOLE;
D O I
10.1016/j.ijhydene.2016.03.142
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
The objective of this study is to observe the effect of the critical design parameters, velocities of inlet gases (hydrogen and air) and the conductivity of polymer membrane, on the performance of a high temperature PEM fuel cell. A consistent and systematic mathematical model is developed in order to study the effect of these parameters. The model is applied to an isothermal, steady state, three-dimensional PEM fuel cell in order to observe concentration profiles, current density profiles and polarization curves. The model includes the transport of gases in anode and cathode gas flow channels, diffusion in the catalyst layers, the transport of water and hydronium ion in the polymer electrolyte and in the catalyst layers, and the transport of electrical current in the solid phase. The model is considered as having a single flow channel. The simulation is performed by using licensed Comsol Multiphysics 5.0, Fuel Cells &Batteries Module. The results compare well with the experimental polarization data obtained at 160 degrees C for ohmic and activation regions. The best match with the experimental data is obtained when the inlet hydrogen gas velocity is 0.133 m/s whereas inlet air velocity is 1.3 m/s for proton conductivity of 10 S/m. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:10001 / 10009
页数:9
相关论文
共 18 条
[1]   Mathematical model of a PEMFC using a PBI membrane [J].
Cheddie, D ;
Munroe, N .
ENERGY CONVERSION AND MANAGEMENT, 2006, 47 (11-12) :1490-1504
[2]   A two-phase model of an intermediate temperature PEM fuel cell [J].
Cheddie, Denver F. ;
Munroe, Norman D. H. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2007, 32 (07) :832-841
[3]   Three dimensional modeling of high temperature PEM fuel cells [J].
Cheddie, Denver F. ;
Munroe, Norman D. H. .
JOURNAL OF POWER SOURCES, 2006, 160 (01) :215-223
[4]   Increasing the efficiency of a portable PEM fuel cell by altering the cathode channel geometry: A numerical and experimental study [J].
Henriques, T. ;
Cesar, B. ;
Costa Branco, P. J. .
APPLIED ENERGY, 2010, 87 (04) :1400-1409
[5]  
Hjuler H. A., 2012, ECS T, V50, P1127, DOI DOI 10.1149/05002.1127ECST
[6]   Analysis of transport phenomena within PEM fuel cells - An analytical solution [J].
Khakpour, Mehrzad ;
Vafai, Kambiz .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2008, 51 (15-16) :3712-3723
[7]   Study of flow channel geometry using current distribution measurement in a high temperature polymer electrolyte membrane fuel cell [J].
Lobato, Justo ;
Canizares, Pablo ;
Rodrigo, Manuel A. ;
Javier Pinar, F. ;
Ubeda, Diego .
JOURNAL OF POWER SOURCES, 2011, 196 (09) :4209-4217
[8]   Three-dimensional model of a 50 cm2 high temperature PEM fuel cell. Study of the flow channel geometry influence [J].
Lobato, Justo ;
Canizares, Pablo ;
Rodrigo, Manuel A. ;
Pinar, F. Javier ;
Mena, Esperanza ;
Ubeda, Diego .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (11) :5510-5520
[9]   Conductivity of PBI membranes for high-temperature polymer electrolyte fuel cells [J].
Ma, YL ;
Wainright, JS ;
Litt, MH ;
Savinell, RF .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2004, 151 (01) :A8-A16
[10]   The effect of electrode parameters on performance of a phosphoric acid-doped PBI membrane fuel cell [J].
Mamlouk, M. ;
Scott, K. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (02) :784-793