This content is not included in
your SAE MOBILUS subscription, or you are not logged in.
Performance Recovery of Fuel Cell Stack for FCEV
Technical Paper
2015-01-1171
ISSN: 0148-7191, e-ISSN: 2688-3627
Annotation ability available
Sector:
Language:
English
Abstract
This paper proposes the several methods for recovering the performance of degraded fuel cell stack for FCEV. Recovery procedure is focused on the reduction of oxidized layer and desorption of sulfonated anion formed on the surface of platinum catalyst during automotive operation at cathode side. As a result of application of recovering methods, it is possible to partially rehabilitate the performance of fuel cell stack by ca. 20-30%. In additions, it is expected that the durability of fuel cell can be improved ultimately with an application of recovery process.
Recommended Content
Technical Paper | Enhancing PtCo Electrode Catalyst Performance for Fuel Cell Vehicle Application |
Journal Article | In-Situ Liquid TEM Study on the Degradation Mechanism of Fuel Cell Catalysts |
Authors
Topic
Citation
Choo, H., Chun, D., Lee, J., Shin, H. et al., "Performance Recovery of Fuel Cell Stack for FCEV," SAE Technical Paper 2015-01-1171, 2015, https://doi.org/10.4271/2015-01-1171.Also In
References
- Borup R. et al Scientific Aspects of Polymer Electrolyte Fuel Cell Durability and Degradation Chem. Reviews 107 3904 2007
- Topalov A. et al Toward a comprehensive understanding of platinum dissolution in acidic media Chem. Sci 5 631 2014
- Borup R. et al PEM Fuel Cell Layer Structure Degradation During Carbon Corrosion ECS Transactions 58 945 2013
- Qi Z. et al Investigation on “saw-tooth” behavior of PEM fuel cell performance during shutdown and restart cycles J. Power Sources 161 864 2006
- Park Y. et al Deleterious effects of interim cyclic voltammetry on Pt/carbon black catalyst degradation during start-up/shutdown cycling evalution Electrochem. Acta 123 84 2014
- Xie J. et al Durability of PEFCs at High Humidity Conditions J. Electrochem. Soc. 152 A104 2005
- Kinumoto Taro et al Stability of Pt-Catalyzed Highly Oriented Pyrolytic Graphite against Hydrogen Peroxide in Acid Solution J. of The Electrochemical Society 153 A58 63 2006
- Gottesfeld P. and Zawodzinski T. A. Polymer Electrolyte Fuel Cells Wiley-VCH
- Xu H. et al Effect of Elevated Temperature and Reduced Relative Humidity on ORR Kinetics for PEM Fuel Cells J. of The Electrochemical Society 152 9 A1828 2005
- Stevens D. A and Dahn J.R. J. of The Electrochemical Society 150 6 A770 2003
- Fu J. et al Potential dependence of sulfur dioxide poisoning and oxidation at the cathode of proton exchange membrane fuel cells J. Power Sources 187 32 2009
- Ohma A. et al Membrane and Catalyst Performance Targets for Automotive Fuel Cells by FCCJ Membrane, Catalyst, MEA ECS Transactions 41 775 2011
- Choo H.S. et al Mechanism for Electrochemical Oxidation of Highly Oriented Pyrolytic Graphite in Sulfuric Acid Solution J. of The Electrochemical Society 154 10 B1017 2007
- Choo H.S. et al Electrochemical oxidation of highly oriented pyrolytic graphite during potential cycling in sulfuric acid solution J. Power Sources 185 740 2008
- Nose M. et al Lactone Formation on Carbonaceous Materials during Electrochemical Oxidation Chemistry Letters 38 788 2009
- Casalongue H.S. et al Direct observation of the oxygenated species during oxygen reduction on a platinum fuel cell cathode Nature communications 4 10.1038/ncomms3817(2013)
- Kodama K. et al Increase in adsorptvity of sulfonate anions on Pt (111) surface with drying of ionomer Electrochemistry Communication 36 26 2013