Water balance simulations of a polymer-electrolyte membrane fuel cell using a two-fluid model

被引:38
作者
Berning, T. [1 ]
Odgaard, M. [2 ]
Kraer, S. K. [1 ]
机构
[1] Aalborg Univ, Dept Energy Technol, DK-9220 Aalborg, Denmark
[2] IRD AS, DK-5700 Svendborg, Denmark
关键词
PEM fuel cells; Water balance; CFD modeling; Multi- phase modeling; Micro-porous layer; Water-uptake layer; MULTIPHASE FLOW-THROUGH; TRANSPORT-PROPERTIES; ELECTROOSMOTIC DRAG; EXCHANGE MEMBRANES; POROUS-MEDIA; PEMFC; COEFFICIENT; MANAGEMENT; SORPTION; LAYER;
D O I
10.1016/j.jpowsour.2011.03.068
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070305 [高分子化学与物理];
摘要
A previously published computational multi-phase model of a polymer-electrolyte membrane fuel cell cathode has been extended in order to account for the anode side and the electrolyte membrane. The model has been applied to study the water balance of a fuel cell during operation under various humidification conditions. It was found that the specific surface area of the electrolyte in the catalyst layers close to the membrane is of critical importance for the overall water balance. Applying a high specific electrolyte surface area close to the membrane (a water-uptake foyer) can prevent drying out of the anode and flooding at the cathode while the average membrane water content is only weakly affected. The results also indicate that in contrast to common presumption membrane dehydration may occur at either anode or cathode side, entirely depending on the direction of the net water transport because the predominant transport mechanism is diffusion. Consequently, operating conditions with a high net water transport from anode to cathode should be avoided as it is important to keep the cathode catalyst layer well humidified in order to prevent high protonic losses. Addition of the micro-porous layer did not affect the overall water balance or membrane water content in our study. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:6305 / 6317
页数:13
相关论文
共 46 条
[1]
BANG M, 2004, THESIS AALBORG U
[2]
BASCHUK JJ, 2009, INT J HYDROGEN ENERG
[3]
Water management in PEM fuel cells [J].
Berg, P ;
Promislow, K ;
St Pierre, J ;
Stumper, J ;
Wetton, B .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2004, 151 (03) :A341-A353
[4]
WATER-BALANCE CALCULATIONS FOR SOLID-POLYMER-ELECTROLYTE FUEL-CELLS [J].
BERNARDI, DM .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1990, 137 (11) :3344-3350
[5]
Water Balance Simulations of a PEM Fuel Cell Using a Two-Fluid Model [J].
Berning, T. ;
Odgaard, M. ;
Kaer, S. K. .
POLYMER ELECTROLYTE FUEL CELLS 10, PTS 1 AND 2, 2010, 33 (01) :1503-+
[6]
BERNING T, 2003, J ELECTROCHEM SOC, V589, pA1598
[7]
A study of multi-phase flow through the cathode side of an interdigitated flow field using a multi-fluid model [J].
Berning, Torsten ;
Odgaard, Madeleine ;
Kaer, Soren Knudsen .
JOURNAL OF POWER SOURCES, 2010, 195 (15) :4842-4852
[8]
A Computational Analysis of Multiphase Flow Through PEMFC Cathode Porous Media Using the Multifluid Approach [J].
Berning, Torsten ;
Odgaard, Madeleine ;
Kaer, Soren K. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2009, 156 (11) :B1301-B1311
[9]
Operating proton exchange membrane fuel cells without external humidification of the reactant gases - Fundamental aspects [J].
Buchi, FN ;
Srinivasan, S .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1997, 144 (08) :2767-2772
[10]
In-situ resistance measurements of Nafion(R) 117 membranes in polymer electrolyte fuel cells [J].
Buchi, FN ;
Scherer, GG .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1996, 404 (01) :37-43