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3D-printed flexible flow-field plates for bendable polymer electrolyte membrane fuel cells
  • Yoo, Hongnyoung ;
  • Kwon, Obeen ;
  • Kim, Jaeyeon ;
  • Cha, Hyeonjin ;
  • Kim, Hyeok ;
  • Choi, Heesoo ;
  • Jeong, Seokhun ;
  • Lee, Young Jo ;
  • Kim, Baekhyeom ;
  • Jang, Gye Eun ;
  • Koh, Je Sung ;
  • Cho, Gu Young ;
  • Park, Taehyun
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Publication Year
2022-06-01
Publisher
Elsevier B.V.
Citation
Journal of Power Sources, Vol.532
Keyword
3D-printed flow-field plateBendable fuel cellCompressive stressFinite element analysisInterfacial contact resistancePolymer electrolyte membrane fuel cell
Mesh Keyword
3d-printed flow-field plateBendable fuel cellCurrent flowsCurrent-collectorFinite element analyseFlexible flowFlow-field plateInterfacial contact resistanceMembrane electrode assembliesPerformance
All Science Classification Codes (ASJC)
Renewable Energy, Sustainability and the EnvironmentEnergy Engineering and Power TechnologyPhysical and Theoretical ChemistryElectrical and Electronic Engineering
Abstract
3D-printed flexible flow-field plates are employed in this study to realize a bendable polymer electrolyte membrane fuel cell (PEMFC). The prepared bendable PEMFC consists of a membrane electrode assembly (MEA), current collectors, and flow-field plates. The performance of the fuel cell is measured in the flat and bent positions. Polarization curves and impedance plots are analyzed to assess the fuel cell performance. A peak power density of 87.1 mW cm−2 is obtained for the fuel cell with the maximum bending, while a power density of 30.2 mW cm−2 is obtained in the flat position. The enhanced performance is attributed to the compressive stress applied to the reaction sites of the MEA during bending of the fuel cell. The compressive stress is calculated using finite element analysis (FEA). According to the FEA results, the compressive stress occurring at the MEA intensifies as the curvature of the fuel cell increases, resulting in significantly decreased ohmic and charge transfer resistances. The successfully realized bendable fuel cell with 3D-printed flexible flow-field plates exhibits flexibility, decent performance, and a simple structure. It is also competitive in terms of the cost of manufacturing owing to the use of 3D printing.
ISSN
0378-7753
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32612
DOI
https://doi.org/10.1016/j.jpowsour.2022.231273
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Type
Article
Funding
This work was financially supported by NRF grants [ 2020R1C1C1009191 ] funded by the Ministry of Science and ICT, Republic of Korea , and \u2018Chungnam energy industry materials and part localization research and development support project\u2019 funded by Chungnam Innovation Agency of Science and Technology, Republic of Korea .
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Koh, Jesung 고제성
Department of Mechanical Engineering
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