Title of article
An inverse geometry design problem for optimization of single serpentine flow field of PEM fuel cell
Author/Authors
Wang، نويسنده , , Xiao-Dong and Huang، نويسنده , , Yu-Xian and Cheng، نويسنده , , Chin-Hsiang and Jang، نويسنده , , Jiin-Yuh and Lee، نويسنده , , Duu-Jong and Yan، نويسنده , , Wei-Mon and Su، نويسنده , , Ay، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2010
Pages
11
From page
4247
To page
4257
Abstract
The cathode flow-field design of a proton exchange membrane fuel cell (PEMFC) determines its reactant transport rates to the catalyst layer and removal rates of liquid water from the cell. This study optimizes the cathode flow field for a single serpentine PEM fuel cell with 5 channels using the heights of channels 2–5 as search parameters. This work describes an optimization approach that integrates the simplified conjugated-gradient scheme and a three-dimensional, two-phase, non-isothermal fuel cell model. The proposed optimal serpentine design, which is composed of three tapered channels (channels 2–4) and a final diverging channel (channel 5), increases cell output power by 11.9% over that of a cell with straight channels. These tapered channels enhance main channel flow and sub-rib convection, both increasing the local oxygen transport rate and, hence, local electrical current density. A diverging, final channel is preferred, conversely, to minimize reactant leakage to the outlet. The proposed combined approach is effective in optimizing the cathode flow-field design for a single serpentine PEMFC. The role of sub-rib convection on cell performance is demonstrated.
Keywords
Serpentine flow field , optimization , Simplified conjugate-gradient method , Proton exchange membrane fuel cell
Journal title
International Journal of Hydrogen Energy
Serial Year
2010
Journal title
International Journal of Hydrogen Energy
Record number
1660452
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