Mathematical modeling of polymer electrolyte fuel cells

被引:59
作者
Sousa, R [1 ]
Gonzalez, ER [1 ]
机构
[1] Univ Sao Paulo, Dept Quim Fis, Inst Quim Sao Carlos, BR-13560970 Sao Carlos, SP, Brazil
基金
巴西圣保罗研究基金会;
关键词
fuel cell; polymer electrolyte membrane; methanol feed; mathematical modeling; review;
D O I
10.1016/j.jpowsour.2005.03.191
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
Fuel cells with a polymer electrolyte membrane have been receiving more and more attention. Modeling plays an important role in the development of fuel cells. In this paper, the state-of-the-art regarding modeling of fuel cells with a polymer electrolyte membrane is reviewed. Modeling has allowed detailed studies concerning the development of these cells, e.g. in discussing the electrocatalysis of the reactions and the design of water-management schemes to cope with membrane dehydration. Two-dimensional models have been used to represent reality, but three-dimensional models can cope with some important additional aspects. Consideration of two-phase transport in the air cathode of a proton exchange membrane fuel cell seems to be very appropriate. Most fuel cells use hydrogen as a fuel. Besides safety concerns, there are problems associated with production, storage and distribution of this fuel. Methanol, as a liquid fuel, can be the solution to these problems and direct methanol fuel cells (DMFCs) are attractive for several applications. Mass transport is a factor that may limit the performance of the cell. Adsorption steps may be coupled to Tafel kinetics to describe methanol oxidation and methanol crossover must also be taken into account. Extending the two-phase approach to the DMFC modeling is a recent, important point. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:32 / 45
页数:14
相关论文
共 74 条
[1]   PARAMETRIC MODELING OF THE PERFORMANCE OF A 5-KW PROTON-EXCHANGE MEMBRANE FUEL-CELL STACK [J].
AMPHLETT, JC ;
BAUMERT, RM ;
MANN, RF ;
PEPPLEY, BA ;
ROBERGE, PR ;
RODRIGUES, A .
JOURNAL OF POWER SOURCES, 1994, 49 (1-3) :349-356
[2]   HYDROGEN-PRODUCTION BY STEAM REFORMING OF METHANOL FOR POLYMER ELECTROLYTE FUEL-CELLS [J].
AMPHLETT, JC ;
CREBER, KAM ;
DAVIS, JM ;
MANN, RF ;
PEPPLEY, BA ;
STOKES, DM .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1994, 19 (02) :131-137
[3]   Production of bioenergy and biochemicals from industrial and agricultural wastewater [J].
Angenent, LT ;
Karim, K ;
Al-Dahhan, MH ;
Domíguez-Espinosa, R .
TRENDS IN BIOTECHNOLOGY, 2004, 22 (09) :477-485
[4]  
Argyropoulos P, 2000, CHEM ENG TECHNOL, V23, P985, DOI 10.1002/1521-4125(200011)23:11<985::AID-CEAT985>3.0.CO
[5]  
2-D
[6]   Hydrodynamic modelling of direct methanol liquid feed fuel cell stacks [J].
Argyropoulos, P ;
Scott, K ;
Taama, WM .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2000, 30 (08) :899-913
[7]   One-dimensional thermal model for direct methanol fuel cell stacks - Part I. Model development [J].
Argyropoulos, P ;
Scott, K ;
Taama, WM .
JOURNAL OF POWER SOURCES, 1999, 79 (02) :169-183
[8]   A semi-empirical model of the direct methanol fuel cell performance - Part I. Model development and verification [J].
Argyropoulos, P ;
Scott, K ;
Shukla, AK ;
Jackson, C .
JOURNAL OF POWER SOURCES, 2003, 123 (02) :190-199
[9]   Modelling of polymer electrolyte membrane fuel cell stacks based on a hydraulic network approach [J].
Baschuk, JJ ;
Li, XG .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2004, 28 (08) :697-724
[10]   Methanol fuel cell model: Anode [J].
Baxter, SF ;
Battaglia, VS ;
White, RE .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1999, 146 (02) :437-447