跳到主要导航 跳到搜索 跳到主要内容

Pore-scale investigation of transport properties and two-phase flow in compressed gas diffusion layers using an integrated FEM-CFD framework

  • Zhuo Zhang
  • , Wei Dong Bao
  • , Hong Bing Quan
  • , Eunseop Yeom
  • , Li Chen
  • , Wen Quan Tao
  • Xi'an Jiaotong University
  • Ltd.
  • Pusan National University

科研成果: 期刊稿件文章同行评审

摘要

The gas diffusion layer (GDL) is pivotal to water and thermal management in proton exchange membrane fuel cells (PEMFCs), with its transport properties severely altered by assembly-induced mechanical deformation. Existing studies often represent compression through porosity reduction alone, while the influence of GDL microstructural characteristics has received less attention. This study develops an integrated framework combining high-fidelity finite element method (FEM) mechanical simulations and multiphysics-coupled computational fluid dynamics (CFD) analysis. Six stochastically reconstructed GDL microstructures (varying in porosity, fiber diameter, thickness) were tested under 0–2.5 MPa compression. Results show compression impairs gas diffusivity and permeability by narrowing transport pathways but enhances thermal/electrical conductivity via increased fiber contacts, with a 58% to 78% porosity rise doubling diffusivity. Volume of fluid (VOF) two-phase flow simulations reveal that compression elevates capillary resistance, inhibiting liquid water invasion and reducing saturation at the same capillary pressure. Fiber diameter and porosity couple with compression-driven deformation, while GDL thickness uniquely modulates liquid storage capacity without changing the fundamental liquid transport mechanism. These results provide useful insights for GDL design and assembly in PEM fuel cells.

源语言英语
期刊论文编号132250
期刊Applied Thermal Engineering
303
DOI
出版状态已出版 - 8月 2026

学术指纹

探究 'Pore-scale investigation of transport properties and two-phase flow in compressed gas diffusion layers using an integrated FEM-CFD framework' 的科研主题。它们共同构成独一无二的学术指纹。

引用此