Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)

With increasing seriousness of environmental issue regarding greenhouse gas (GHS) growth, the demand for development of fuel cell technology in automotive application receives raised attention this decade. Among different fuel cell, PEM fuel cell seems to be the most promising candidate. Bipolar p...

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Main Author: Chen, Hongyu.
Other Authors: Chen Zhong
Format: Final Year Project
Language:English
Published: 2009
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Online Access:http://hdl.handle.net/10356/18938
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-189382023-03-04T15:31:39Z Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC) Chen, Hongyu. Chen Zhong School of Materials Science and Engineering Wan Yee Ming DRNTU::Engineering::Materials::Energy materials With increasing seriousness of environmental issue regarding greenhouse gas (GHS) growth, the demand for development of fuel cell technology in automotive application receives raised attention this decade. Among different fuel cell, PEM fuel cell seems to be the most promising candidate. Bipolar plate is one of the most important components in the PEM fuel cell, accounting for 45% of the total stack cost. Minimizing the cost and enhancing the performance of bipolar plates becomes one hot research and development area in order to widely commercialize fuel cell in the future. Currently, graphite is the main commercialized plates, but its porous nature, poor mechanical properties, and high cost for mass volume production hinders its large scale commercialization. Metallic plates have high electrical conductivitiy, high termal conductivity, excellent mechanical properties, and lower cost over mass production, which are more promising for bipolar plate. However, most metals are easily corroded under thea cidic and corrosive fuel cell working environment. One possible solution is to coat a protection layer on the base metal. In this report, Au coating and different layers of carbon-paste-coating were investigated in terms of the corrosion resistance and contact resistance. Potentiondynamic polarization tests were applied on both sample plates and real fuel cell to study the corrosion resistance and fuel cell performance. SEM was used to examine the surface morphology of the tested samples before and after polarization tests. Furthermore, different carbon-past-coating thicknesses were carried out to optimize the thickness in this study. Bachelor of Engineering (Materials Engineering) 2009-08-21T07:59:00Z 2009-08-21T07:59:00Z 2009 2009 Final Year Project (FYP) http://hdl.handle.net/10356/18938 en Nanyang Technological University 54 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Energy materials
spellingShingle DRNTU::Engineering::Materials::Energy materials
Chen, Hongyu.
Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)
description With increasing seriousness of environmental issue regarding greenhouse gas (GHS) growth, the demand for development of fuel cell technology in automotive application receives raised attention this decade. Among different fuel cell, PEM fuel cell seems to be the most promising candidate. Bipolar plate is one of the most important components in the PEM fuel cell, accounting for 45% of the total stack cost. Minimizing the cost and enhancing the performance of bipolar plates becomes one hot research and development area in order to widely commercialize fuel cell in the future. Currently, graphite is the main commercialized plates, but its porous nature, poor mechanical properties, and high cost for mass volume production hinders its large scale commercialization. Metallic plates have high electrical conductivitiy, high termal conductivity, excellent mechanical properties, and lower cost over mass production, which are more promising for bipolar plate. However, most metals are easily corroded under thea cidic and corrosive fuel cell working environment. One possible solution is to coat a protection layer on the base metal. In this report, Au coating and different layers of carbon-paste-coating were investigated in terms of the corrosion resistance and contact resistance. Potentiondynamic polarization tests were applied on both sample plates and real fuel cell to study the corrosion resistance and fuel cell performance. SEM was used to examine the surface morphology of the tested samples before and after polarization tests. Furthermore, different carbon-past-coating thicknesses were carried out to optimize the thickness in this study.
author2 Chen Zhong
author_facet Chen Zhong
Chen, Hongyu.
format Final Year Project
author Chen, Hongyu.
author_sort Chen, Hongyu.
title Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)
title_short Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)
title_full Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)
title_fullStr Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)
title_full_unstemmed Development of low cost miniature aluminium bipolar plates for PEM fuel cells (PEMFC)
title_sort development of low cost miniature aluminium bipolar plates for pem fuel cells (pemfc)
publishDate 2009
url http://hdl.handle.net/10356/18938
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