A novel cooling flow field design for polymer electrolyte membrane fuel cell stack

被引:61
作者
Alizadeh, E. [1 ]
Rahgoshay, S. M. [1 ]
Rahimi-Esbo, M. [1 ]
Khorshidian, M. [1 ]
Saadat, S. H. M. [1 ]
机构
[1] Malek Ashtar Univ Technol, Fuel Cell Technol Res Lab, Shahin Shahr, Iran
关键词
Fuel cell; Cooling flow field; Thermal behavior; Pressure drop; PERFORMANCE; PLATES;
D O I
10.1016/j.ijhydene.2016.03.187
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
Efficient operation of a proton exchange membrane fuel cell (PEMFC) is hugely dependent on an effective cooling system. Non-uniformity of temperature causes a varying rate of electrochemical reaction at different places leading hot spot formation which decrease the lifetime of PEM fuel cell. The most part of heat generated in the PEM fuel cell is removed by cooling fluid (forced convection) while the remainder is dissipated by natural convection, radiation and temperature difference between the inlet and outlet of reaction gases. The reaction rate and current density are related to temperature distribution on flow field, therefore it has to be kept uniform at the surface of active area to achieve a uniform current density. Designing a cooling system requires significant challenges in regard to the narrow range of operating temperatures. In this study, new cooling flow fields are numerically investigated in order to clarify the sufficient design for the heat removal. Numerical simulation is employed to investigate the coolant flow distribution, pressure drop and thermal behavior of different designs. The temperature contours represent the temperature uniformity for the assessed case. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:8525 / 8532
页数:8
相关论文
共 19 条
[1]   Mathematical modeling and simulation of thermal management in polymer electrolyte membrane fuel cell stacks [J].
Amirfazli, Amir ;
Asghari, Saeed ;
Koosha, Morteza .
JOURNAL OF POWER SOURCES, 2014, 268 :533-545
[2]  
[Anonymous], THESIS H SCHMIDT U H
[3]   Design of thermal management subsystem for a 5 kW polymer electrolyte membrane fuel cell system [J].
Asghari, Saeed ;
Akhgar, Hooman ;
Imani, Bagher Faghih .
JOURNAL OF POWER SOURCES, 2011, 196 (06) :3141-3148
[4]   A numerical study on uniform cooling of large-scale PEMFCs with different coolant flow field designs [J].
Baek, Seung Man ;
Yu, Seung Ho ;
Nam, Jin Hyun ;
Kim, Charn-Jung .
APPLIED THERMAL ENGINEERING, 2011, 31 (8-9) :1427-1434
[5]   Analysis of Optimal Heat Transfer in a PEM Fuel Cell Cooling Plate [J].
Chen, F. C. ;
Gao, Z. ;
Loutfy, R. O. ;
Hecht, M. .
FUEL CELLS, 2004, 3 (04) :181-188
[6]   Numerical analysis on the performance of cooling plates in a PEFC [J].
Choi, Jongrain ;
Kim, Yoon-Ho ;
Lee, Yongtaek ;
Lee, Kyu-Jung ;
Kim, Yongchan .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2008, 22 (07) :1417-1425
[7]   Assessing fuel-cell coolant flow fields with numerical models and infrared thermography [J].
Gould, Benjamin D. ;
Ramamurti, Ravi ;
Osland, Corey R. ;
Swider-Lyons, Karen E. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (26) :14061-14070
[8]  
Irnie Zakaria, 2015, ENERGY P, V79, P259
[9]   Configuration effects of air, fuel, and coolant inlets on the performance of a proton exchange membrane fuel cell for automotive applications [J].
Kang, Sanggyu ;
Min, Kyoungdoug ;
Mueller, Fabian ;
Brouwer, Jacob .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (16) :6749-6764
[10]  
Launder BE, 1972, Lectures in mathematical models of turbulence