Jump to main content
US EPA
United States Environmental Protection Agency
Search
Search
Main menu
Environmental Topics
Laws & Regulations
About EPA
Health & Environmental Research Online (HERO)
Contact Us
Print
Feedback
Export to File
Search:
This record has one attached file:
Add More Files
Attach File(s):
Display Name for File*:
Save
Citation
Tags
HERO ID
6068215
Reference Type
Journal Article
Title
Numerical modelling of methane-powered micro-tubular, single-chamber solid oxide fuel cell
Author(s)
Akhtar, N; Decent, SP; Kendall, K
Year
2010
Is Peer Reviewed?
Yes
Journal
Journal of Power Sources
ISSN:
0378-7753
Volume
195
Issue
23
Page Numbers
7796-7807
DOI
10.1016/j.jpowsour.2010.01.084
Web of Science Id
WOS:000281326300014
URL
http://www.sciencedirect.com/science/article/pii/S0378775310002491
Exit
Abstract
An experimentally validated, two-dimensional, axisymmetric, numerical model of micro-tubular, single-chamber solid oxide fuel cell (MT-SC-SOFC) has been developed. The model incorporates methane full combustion, steam reforming, dry reforming and water-gas shift reaction followed by electrochemical oxidation of produced hydrogen within the anode. On the cathode side, parasitic combustion of methane along with the electrochemical oxygen reduction is implemented. The results show that the poor performance of single-chamber SOFC as compared to the conventional (dual-chamber) SOFC (in case of micro-tubes) is due to the mass transport limitation on the anode side. The gas velocity inside the micro-tube is far too low when compared to the gas-chamber inlet velocity. The electronic current density is also non-uniform over the cell length, mainly due to the short length of the anode current collector located at the cell outlet. Furthermore, the higher temperature near the cell edges is due to the methane combustion (very close to the cell inlet) and current collection point (at the cell outlet). Both of these locations could be sensitive to the silver current collecting wire as silver may rupture due to cell overheating.
Keywords
Single-chamber; Micro-tubular; Solid oxide fuel cell; Numerical model
Home
Learn about HERO
Using HERO
Search HERO
Projects in HERO
Risk Assessment
Transparency & Integrity