Title
A Multiphysics Model Of Pem Fuel Cell Incorporating The Cell Compression Effects
Abstract
A fundamental understanding of polymer electrolyte membrane (PEM) fuel cell material degradation and performance variation under various operating conditions requires numerical models that accurately describe coupled electrochemical, charge, mass, and heat transport, as well as the structural response (deformation) of fuel cells. An integrated model representing the charge and mass transport, electrochemical reactions, and structural response was attempted in this work based on a unified finite element modeling technique for analyzing these coupled phenomena. The model accounted for the inhomogeneous gas transport properties of gas diffusion layer (GDL) and the electrical contact resistance as a function of stress distribution in the compressed GDL, as well as the swelling of ionomer membranes due to water absorption. For the mechanical modeling of the ionomer membranes, a micromechanism-inspired viscoelastic model with hygrothermal expansion was used. The analysis showed cell compression effects on both the fuel cell performance and the mechanical stress distribution in membranes under realistic fuel cell operation conditions. The results showed dramatic changes in gas transport properties and current density profiles with respect to the degree of cell compression and the stress distribution in the membrane altered by the operating conditions such as relative humidity and current density. © 2010 The Electrochemical Society.
Publication Date
4-27-2010
Publication Title
Journal of the Electrochemical Society
Volume
157
Issue
5
Number of Pages
-
Document Type
Article
Personal Identifier
scopus
DOI Link
https://doi.org/10.1149/1.3368761
Copyright Status
Unknown
Socpus ID
77951168272 (Scopus)
Source API URL
https://api.elsevier.com/content/abstract/scopus_id/77951168272
STARS Citation
Yoon, Wonseok and Huang, Xinyu, "A Multiphysics Model Of Pem Fuel Cell Incorporating The Cell Compression Effects" (2010). Scopus Export 2010-2014. 647.
https://stars.library.ucf.edu/scopus2010/647