Temperature distribution on anodic surface of membrane electrode assembly in proton exchange membrane fuel cell with interdigitated flow bed

被引:55
作者
Guo, Hang [1 ]
Wang, Mao Hai
Liu, Jia Xing
Nie, Zhi Hua
Ye, Fang
Ma, Chong Fang
机构
[1] Beijing Univ Technol, Coll Environm & Energy Engn, MOE Key Lab Enhanced Heat Transfer & Energy Conse, Beijing 100124, Peoples R China
基金
中国国家自然科学基金;
关键词
Infrared thermal imaging; Interdigital channel flow bed; Membrane electrode assembly; Proton exchange membrane fuel cells; Temperature distribution; PARALLEL-CHANNEL CONFIGURATIONS; OPERATIONAL PARAMETERS; PRESSURE-DROP; SINGLE-CELL; PERFORMANCE; FIELDS; MEA; VISUALIZATION; SENSORS; STACKS;
D O I
10.1016/j.jpowsour.2014.09.159
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
Temperature distribution on the surface of a membrane electrode assembly (MEA) significantly influences the performance, lifetime, and reliability of proton exchange membrane fuel cells (PEMFCs). Entire temperature fields on the surface of an MEA anode side under an interdigitated flow field are experimentally measured at non-humidification conditions with a self-designed PEMFC and infrared imaging technology. The highest temperature on the surface of the MEA anode side appears in the bottom bordered two side channels, and the lowest temperature exists in the area closed to the inlet of the middle channel. The hot region on the surface of the MEA anode side is easy to locate in the infrared temperature image. The reason for the temperature distribution under the interdigitated flow field is analyzed. The temperature of the MEA, the non-uniformity of temperature distribution on the surface of the MEA anode side, and the fuel cell temperature increase with the loaded current density. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:775 / 783
页数:9
相关论文
共 38 条
[1]   Spatially resolved optical measurements of water partial pressure and temperature in a PEM fuel cell under dynamic operating conditions [J].
Basu, S. ;
Renfro, M. W. ;
Cetegen, B. M. .
JOURNAL OF POWER SOURCES, 2006, 162 (01) :286-293
[2]   Application of infrared thermal imaging to the study of pellet solid oxide fuel cells [J].
Brett, D. J. L. ;
Aguiar, P. ;
Clague, R. ;
Marquis, A. J. ;
Schoettl, S. ;
Simpson, R. ;
Brandon, N. P. .
JOURNAL OF POWER SOURCES, 2007, 166 (01) :112-119
[3]   In-fibre Bragg grating sensors for distributed temperature measurement in a polymer electrolyte membrane fuel cell [J].
David, Nigel A. ;
Wild, Peter M. ;
Hu, Jingwei ;
Djilali, Nedjib .
JOURNAL OF POWER SOURCES, 2009, 192 (02) :376-380
[4]   Influence of the operational parameters on the performance of polymer electrolyte membrane fuel cells with different flow fields [J].
de Souza, A ;
Gonzalez, ER .
JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2003, 7 (09) :651-657
[5]   Thermal stability of portable microtubular SOFCs and stacks [J].
Du, Yanhai ;
Finnerty, Caine ;
Jiang, Juan .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2008, 155 (09) :B972-B977
[6]   Experimental study of temperature distribution on anodic surface of MEA inside a PEMFC with parallel channels flow bed [J].
Guo, Hang ;
Wang, Mao Hai ;
Ye, Fang ;
Ma, Chong Fang .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (17) :13155-13160
[7]  
Guo H, 2009, PROCEEDINGS OF THE 7TH INTERNATIONAL CONFERENCE ON FUEL CELL SCIENCE, ENGINEERING, AND TECHNOLOGY, P533
[8]   Development of an In Situ Surface Deformation and Temperature Measurement Technique for a Solid Oxide Fuel Cell Button Cell [J].
Guo, Huang ;
Iqbal, Gulfam ;
Kang, Bruce S. .
INTERNATIONAL JOURNAL OF APPLIED CERAMIC TECHNOLOGY, 2010, 7 (01) :55-62
[9]   Spatially resolved measurement of PEM fuel cells [J].
Hakenjos, A ;
Hebling, C .
JOURNAL OF POWER SOURCES, 2005, 145 (02) :307-311
[10]   A PEM fuel cell for combined measurement of current and temperature distribution, and flow field flooding [J].
Hakenjos, A ;
Muenter, H ;
Wittstadt, U ;
Hebling, C .
JOURNAL OF POWER SOURCES, 2004, 131 (1-2) :213-216