Transport mechanisms and performance simulations of a PEM fuel cell with interdigitated flow field
A proton exchange membrane (PEM) fuel cell with interdigitated flow field was studied numerically. A three-dimensional, gas–liquid two-phase flow and transport model was developed and utilized to simulate the multi-dimensional, multi-phase flow and transport phenomena in both the anode and cathode sides in the fuel cell and the cell performances with different influencing operational and geometric parameters. The simulations are presented with an emphasis on the physical insight and fundamental understanding afforded by the detailed distributions of working media velocity, oxygen concentration, water vapor concentration, liquid water concentration, water content in the PEM, net water flux per proton flux, current density and overpotential. Cell performances with different influencing factors are also discussed. A comparison of the model prediction and the experimental data shows good agreement.
Year of publication: |
2009
|
---|---|
Authors: | Yu, Li-jun ; Ren, Geng-po ; Qin, Ming-jun ; Jiang, Xiu-min |
Published in: |
Renewable Energy. - Elsevier, ISSN 0960-1481. - Vol. 34.2009, 3, p. 530-543
|
Publisher: |
Elsevier |
Subject: | Cell performance | Computational fluid dynamics | Interdigitated flow field | Proton exchange membrane fuel cell | Transport mechanism |
Saved in:
Online Resource
Saved in favorites
Similar items by subject
-
Chiu, Han-Chieh, (2012)
-
Analysis of PEM (Polymer Electrolyte Membrane) fuel cell cathode two-dimensional modeling
Abdollahzadeh, M., (2014)
-
Effects of SOC-dependent electrolyte viscosity on performance of vanadium redox flow batteries
Xu, Q., (2014)
- More ...
Similar items by person