Influence of capillary resistance within GDL on water transport behavior and cell performance
ID:116 View Protection:ATTENDEE Updated Time:2025-09-30 10:47:49 Hits:313 Oral Presentation

Start Time:2025-10-11 10:55(Asia/Shanghai)

Duration:15min

Session:S10 Fuel cells and other application » S10Session 10

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Abstract
Improving the gas transport efficiency within gas diffusion layer (GDL) is of vital importance to enhance the overall performance of proton exchange membrane fuel cells (PEMFC) and promoting their commercialization. In this study, the effects of capillary resistance cast by polytetrafluoroethylene (PTFE) and structural modifications including gradient porosity and patterned wettability on liquid water permeation dynamics and electrochemical performance are systematically investigated. Results demonstrate that capillary resistance significantly changes the flow preferences within GDL and the maximum current density and power density. Applying structural modifications can lower the saturation levels within GDL, better separating the paths of liquid water and reactant gas. The capillary pressure-saturation curves (Pc-Sa curves) of modified GDLs show larger inlet capillary pressure and close maximum capillary pressure, indicating that the maximum capillary pressure is mainly dominated by bulk porosity. The maximum current density and power density increases by 6.2% and 4.3% as PTFE content increases from 2% to 10%, and by 3.9% and 2.7%, 4.6% and 4.1% for GDLs with gradient porosity and patterned wettability configurations, proving that increasing surface hydrophobicity and applying structure modification are effective in enhancing the overall cell performance.
Keywords
GDL,PEMFC,LBM,Water management
Speaker
Xutao Liu
Xi'an Jiaotong University, China

Submission Author
Xutao Liu Xi'An Jiaotong University
Li Chen Xi'An Jiaotong University
Wen-Quan Tao Xi'an Jiaotong University
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Important Date
  • Conference Date

    Oct 09

    2025

    to

    Oct 13

    2025

  • Oct 13 2025

    Registration deadline

  • Nov 15 2025

    Draft paper submission deadline

Sponsored By
Huazhong University of Science and Technology
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