Coolant induced variable temperature flow field for improved performance of proton exchange membrane fuel cells

被引:14
作者
Penga, Zeljko [1 ]
Radica, Gojmir [1 ]
Barbir, Frano [1 ]
Nizetic, Sandro [1 ]
机构
[1] Univ Split, Fac Elect Engn Mech Engn & Naval Architecture, R Boskovica 32, Split 21000, Croatia
基金
欧盟地平线“2020”;
关键词
Proton exchange membrane fuel cells; Operation without external humidification; Computational fluid dynamics; Variable temperature flow field; PLANE WATER DISTRIBUTION; CATHODE HUMIDIFICATION; RELATIVE-HUMIDITY; TRANSPORT; PEMFC; GAS; MANAGEMENT; DIFFUSION; DISTRIBUTIONS; NAFION;
D O I
10.1016/j.ijhydene.2018.10.237
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 the coolant induced variable temperature flow field concept is to maintain high membrane water content along the entire flow field without external humidification and without occurrence of liquid water inside the cell at higher currents. This is achieved by imposing a temperature gradient in the cathode downstream direction in such manner that the product water is just sufficient to maintain close to 100% relative humidity along the entire flow field. The concept must be feasible for stack applications and flexible to enable efficient operation under significantly different operating conditions. The concept is investigated via interactive combination of computational fluid dynamics modeling and experimental validation for two membranes, namely Nafion (R) 212 and Nafion (R) 115. Additional calculations are also carried out for a five-cell stack with Nafion (R) 212 membranes. The results of the computational fluid dynamics model are compared with the experimental data. Calculated and measured current density and relative humidity distributions along the cell give insight in the membrane water content and membrane water flux. With the coolant induced variable temperature flow field concept it is possible to achieve close to 100% relative humidity along the entire flow field without the requirement for external humidification, and to minimize the occurrence of liquid water inside the cell, resulting in improved performance of the cell in comparison with commonly used isothermal operation. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:10102 / 10119
页数:18
相关论文
共 55 条
  • [1] Automotive hydrogen fuelling stations: An international review
    Alazemi, Jasem
    Andrews, John
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 48 : 483 - 499
  • [2] Investigation of water transport dynamics in polymer electrolyte membrane fuel cells based on high porous micro porous layers
    Alrwashdeh, Saad S.
    Markoetter, Henning
    Haussmann, Jan
    Arlt, Tobias
    Klages, Merle
    Scholta, Joachim
    Banhart, John
    Manke, Ingo
    [J]. ENERGY, 2016, 102 : 161 - 165
  • [3] [Anonymous], 2009, ANSYS FLUENT 12 0 FU
  • [4] Barbir F., 2012, PEM Fuel Cells, V2nd
  • [5] Neutron imaging technique for in situ measurement of water transport gradients within Nafion in polymer electrolyte fuel cells
    Bellows, RJ
    Lin, MY
    Arif, M
    Thompson, AK
    Jacobson, D
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1999, 146 (03) : 1099 - 1103
  • [6] Bergbreiter C, 2016, ZSW SIMULATIONSHANDB
  • [7] Three-dimensional computational analysis of transport phenomena in a PEM fuel cell - a parametric study
    Berning, T
    Djilali, N
    [J]. JOURNAL OF POWER SOURCES, 2003, 124 (02) : 440 - 452
  • [8] A review of the curious case of heat transport in polymer electrolyte fuel cells and the need for more characterisation
    Burheim, Odne S.
    Pharoah, Jon G.
    [J]. CURRENT OPINION IN ELECTROCHEMISTRY, 2017, 5 (01) : 36 - 42
  • [9] High temperature (HT) polymer electrolyte membrane fuel cells (PEMFC) - A review
    Chandan, Amrit
    Hattenberger, Mariska
    El-Kharouf, Ahmad
    Du, Shangfeng
    Dhir, Aman
    Self, Valerie
    Pollet, Bruno G.
    Ingram, Andrew
    Bujalski, Waldemar
    [J]. JOURNAL OF POWER SOURCES, 2013, 231 : 264 - 278
  • [10] Analysis of Optimal Heat Transfer in a PEM Fuel Cell Cooling Plate
    Chen, F. C.
    Gao, Z.
    Loutfy, R. O.
    Hecht, M.
    [J]. FUEL CELLS, 2004, 3 (04) : 181 - 188