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PMID: 31082779 Published · ppublish English Journal Article

Numerical modelling and CFD simulation of a polymer electrolyte membrane (PEM) fuel cell flow channel using an open pore cellular foam material.

The Science of the total environment ·Vol. 678 ·2019-08-15 ·页码 728-740

Wilberforce T, Khatib FN, Ijaodola OS, Ogungbemi E, El-Hassan Z, Durrant A, Thompson J, Olabi AG

Abstract

Fuel cell performances vary with different structural configurations and materials. However, the two main areas that determine this performance metric are the membrane electrode assembly (MEA) and the bipolar plates. The MEA provides the platform for the electrochemical reaction to occur and the bipolar plate serves as a medium between the reactants (hydrogen and air) and the catalyst layer. The bipolar plate is the first point of contact for the reactants inside the fuel cell, so a badly designed item with a high pressure drop will have a negative impact on fuel cell performance. Numerical modelling and simulation tools like ANSYS have a huge impact on engineering industry as they help designs to be validated and analysed before any physical construction. This investigation considers five suitable flow plate designs for PEM fuel cell, each completely different from the readily available, traditional serpentine designs on the market. The work explored the possibility of replacing these flow channels with an aluminium cellular foam with different inlet and outlet orientations. The designs were further optimised and modelled in ANSYS. The results obtained were compared with other designs in the literature. Compared to the serpentine flow design, the open pore cellular foam material showed a very small pressure drop in the range of 30-40 Pa. This indicates a possibility of replacing the traditional flow plate designs with the proposed ones.

Keywords
Computational fluid dynamics (CFD) Design of Experiment (DOE) Fuel cell Optimization Serpentine
作者与单位
共 8 位作者,点击展开单位 / ORCID
Wilberforce Tabbi
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK.
Khatib F N
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK. Electronic address: [email protected].
Ijaodola O S
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK.
Ogungbemi E
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK.
El-Hassan Zaki
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK.
Durrant A
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK.
Thompson J
Institute of Engineering and Energy Technologies, University of the West of Scotland, PA1 2BE, UK.
Olabi A G
Dept. of Sustainable and Renewable Energy Engineering, University of Sharjah, P.O. Box 27272, Sharjah, United Arab Emirates; Mechanical Engineering and Design, Aston University, School of Engineering and Applied Science, Aston Triangle, Birmingham B4 7ET, UK.
Article Info
Journal
The Science of the total environment
Abbr.
Sci Total Environ
ISSN
1879-1026
Corresponding email
Published
2019-08-15
电子出版
2019-00-22
页码
728-740
Language
English
Country/Region
Netherlands
NLM ID
0330500
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