Fundamental Research Needs in Combined Water and Thermal Management Within a Proton Exchange Membrane Fuel Cell Stack Under Normal and Cold-Start Conditions

被引:62
作者
Kandlikar, Satish G. [1 ]
Lu, Zijie [1 ]
机构
[1] Rochester Inst Technol, Rochester, NY 14623 USA
来源
JOURNAL OF FUEL CELL SCIENCE AND TECHNOLOGY | 2009年 / 6卷 / 04期
关键词
automobiles; cooling; proton exchange membrane fuel cells; thermal management (packaging); POLYMER ELECTROLYTE MEMBRANE; LIQUID WATER; CATALYST LAYER; DIFFUSION-LAYER; PLATINUM-ELECTRODE; NAFION MEMBRANES; OXYGEN REDUCTION; 2-PHASE MODEL; ICE FORMATION; PEM;
D O I
10.1115/1.3008043
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Each fuel cell component of a proton exchange membrane fuel cell (PEMFC) used in automotive application operates most effectively (from performance and durability standpoints) within specific ranges of water content and temperature. The water and heat transport processes are coupled and present a challenge in providing the right balance over the entire range of operating conditions. Another important related aspect is CO poisoning of the electrocatalyst, which adversely affects the fuel cell performance. Freezing and cold-start present additional challenges for automotive PEMFCs. A critical review of the recent developments on these topics is presented in this paper. The study covers both the microscopic and macroscopic aspects of the transport within membrane, catalyst layers, gas diffusion layers, and gas channels, and an overview of the current PEMFC cooling technology. After discussing the current status, suggestions for future work on the above topics are presented.
引用
收藏
页码:0440011 / 04400113
页数:13
相关论文
共 157 条
[1]   Transition metal oxides as reconfigured fuel cell anode catalysts for improved CO tolerance: Polarization data [J].
Adcock, PA ;
Pacheco, SV ;
Norman, KM ;
Uribe, FA .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2005, 152 (02) :A459-A466
[2]   PERFORMANCE MODELING OF THE BALLARD-MARK-IV SOLD POLYMER ELECTROLYTE FUEL-CELL .2. EMPIRICAL-MODEL DEVELOPMENT [J].
AMPHLETT, JC ;
BAUMERT, RM ;
MANN, RF ;
PEPPLEY, BA ;
ROBERGE, PR ;
HARRIS, TJ .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1995, 142 (01) :9-15
[3]   Analysis of performance losses in polymer electrolyte fuel cells at high current densities by impedance spectroscopy [J].
Andreaus, B ;
McEvoy, AJ ;
Scherer, GG .
ELECTROCHIMICA ACTA, 2002, 47 (13-14) :2223-2229
[4]  
ASHLEY S, 2006, FUEL CELLS START LOO
[5]   Oxygen reduction on platinum electrode coated with Nafion® [J].
Ayad, A ;
Naimi, Y ;
Bouet, J ;
Fauvarque, JF .
JOURNAL OF POWER SOURCES, 2004, 130 (1-2) :50-55
[6]   Modeling and simulation of PEM fuel cells with CO poisoning [J].
Baschuk, JJ ;
Rowe, AM ;
Li, XG .
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2003, 125 (02) :94-100
[7]   Carbon monoxide poisoning of proton exchange membrane fuel cells [J].
Baschuk, JJ ;
Li, XG .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2001, 25 (08) :695-713
[8]   Evaluation of the water-gas shift and CO methanation processes for purification of reformate gases and the coupling to a PEM fuel cell system [J].
Batista, MS ;
Santiago, EI ;
Assaf, EM ;
Ticianelli, EA .
JOURNAL OF POWER SOURCES, 2005, 145 (01) :50-54
[9]   Influence of temperature and humidity on the mechanical properties of Nafion® 117 polymer electrolyte membrane [J].
Bauer, F ;
Denneler, S ;
Willert-Porada, M .
JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2005, 43 (07) :786-795
[10]  
Bellows RJ, 1998, ELECTROCHEM SOLID ST, V1, P69, DOI 10.1149/1.1390639