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Improvement of under-the-rib oxygen concentration and water removal in proton exchange membrane fuel cells through three-dimensional metal printed novel flow fields
Authors:Gaojian Chen  Weidong Shi  Jin Xuan  ?eljko Penga  Qian Xu  Hang Guo  Huaneng Su  Lei Xing
Affiliation:1. Institute of Energy research, Jiangsu University, Zhenjiang, China

School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, China

Contribution: Data curation (lead), ?Investigation (lead), Methodology (equal), Writing - original draft (equal);2. School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, China;3. Department of Chemical Engineering, Loughborough University, Loughborough, UK

Contribution: Project administration (equal), Software (equal), Supervision (equal), Writing - review & editing (supporting);4. Faculty of Electrical Engineering, Mechanical Engineering and Naval Architecture, University of Split, Split, Croatia

Contribution: Formal analysis (equal), ?Investigation (supporting), Writing - review & editing (supporting);5. Institute of Energy research, Jiangsu University, Zhenjiang, China

Contribution: Formal analysis (equal), Resources (equal), Supervision (equal);6. MOE Key Laboratory of Enhanced Heat Transfer and Energy Conservation, and Beijing Key Laboratory of Heat Transfer and Energy Conversion, Beijing University of Technology, Beijing, China

Contribution: Formal analysis (equal), Methodology (supporting), Resources (supporting);7. Institute of Energy research, Jiangsu University, Zhenjiang, China

Contribution: Formal analysis (supporting), Methodology (supporting), Resources (equal);8. Department of Chemical Engineering, Loughborough University, Loughborough, UK

Abstract:The porous electrode under the rib area suffers from lower local oxygen concentration and more severe water flooding than that under the channel, which significantly affect the performance of proton exchange membrane fuel cells. To improve the oxygen concentration and water drainage under the rib, a series of novel flow fields with auxiliary channels equipped with through-plane arrayed holes were manufactured by three-dimensional (3D) metal printing, and the cell performance, ohmic resistance and pressure drop were experimentally and numerically studied, respectively. The novel fields were based on the sophisticated modification of traditional serpentine and parallel flow fields, that significantly improved the cell performance at high current density with an optimal number or length of the auxiliary channels, owing to the trade-off between the electric resistance and mass transfer under the rib. This novel flow field design solved the trilemma of performance, pressure drop and manufacture feasibility through the implementation of 3D printing technology.
Keywords:3D printing  arrayed hole  auxiliary channel  flow field  PEM fuel cell
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