The flow and performance for a micro-channel reformer of a fuel cell is studied numerically. Methanol with water flows into a micro-channel with catalyst layer and is reformed to provide hydrogen for the fuel cell. The channel length is varied from 800 to 6000 μm and the channel height varied from 50 to 400 μm. The inlet flow velocity varies from 0.00001 to 0.002 m/s, and the inlet temperature varies from 250 to 350 °C. The density (area fraction on the wall) of catalyst varies from 25 to 100%. A reference case is chosen to have 100 μm channel height, 0.0001 m/s inlet velocity, and 100% catalyst density. The results indicate that the higher the inlet velocity, the lower the methanol conversion mass fraction. The variation of the conversion ratio is almost linear with the flow rate. As expected, the higher the catalyst desity, the higher the conversion effieciency. However, the present results indicate that the reduction of the catalyst density by a half only sacrifices 5% performance. In addition, the conversion efficiency decreases with the increase of the channel height, but increases with the increase of the inlet temperature. The present results can provide design reference for fuel cells with a micro-channel reformer.
Skip Nav Destination
ASME/JSME 2007 5th Joint Fluids Engineering Conference
July 30–August 2, 2007
San Diego, California, USA
Conference Sponsors:
- Fluids Engineering Division
ISBN:
0-7918-4288-6
PROCEEDINGS PAPER
Numerical Modeling for Flow and Transport in a Micro-Channel Fuel Cell Reformer Available to Purchase
Ru Yang
National Sun Yat-Sen University, Kaohsiung, Taiwan, R.O.C.
S. Y. Lin
National Sun Yat-Sen University, Kaohsiung, Taiwan, R.O.C.
Paper No:
FEDSM2007-37261, pp. 99-104; 6 pages
Published Online:
March 30, 2009
Citation
Yang, R, & Lin, SY. "Numerical Modeling for Flow and Transport in a Micro-Channel Fuel Cell Reformer." Proceedings of the ASME/JSME 2007 5th Joint Fluids Engineering Conference. Volume 1: Symposia, Parts A and B. San Diego, California, USA. July 30–August 2, 2007. pp. 99-104. ASME. https://doi.org/10.1115/FEDSM2007-37261
Download citation file:
9
Views
Related Proceedings Papers
Related Articles
Numerical Modeling of Polymer Electrolyte Fuel Cells With Analytical and Experimental Validation
J. Electrochem. En. Conv. Stor (August,2019)
Lattice Boltzmann Simulations of CO 2 Bubble Dynamics at the Anode of a μ DMFC
J. Fuel Cell Sci. Technol (May,2006)
Effects of Cooling System Boundary Conditions on the Performance of Proton Exchange Membrane Fuel Cell: A Comprehensive Analysis
J. Electrochem. En. Conv. Stor (May,2024)
Related Chapters
Experiment Investigation of Flow Boiling Process Including Cavitation in Micro-Channel
Inaugural US-EU-China Thermophysics Conference-Renewable Energy 2009 (UECTC 2009 Proceedings)
Stress and Deformation States Associated with Upset Tests in Metals
Compression Testing of Homogeneous Materials and Composites
Atomistic Computer Simulation of Alloy Corrosion
Computer Modeling in Corrosion