• Title of article

    Simulation and experimental analysis of the clamping pressure distribution in a PEM fuel cell stack

  • Author/Authors

    Bates، نويسنده , , Alex and Mukherjee، نويسنده , , Santanu and Hwang، نويسنده , , Sunwook and Lee، نويسنده , , Sang C. and Kwon، نويسنده , , Osung and Choi، نويسنده , , Gyeung Ho and Park، نويسنده , , Sam، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    13
  • From page
    6481
  • To page
    6493
  • Abstract
    High performance and efficiency are often reported in single-cell polymer electrolyte membrane (PEM) fuel cell (FC) experiments. This however, can reduce substantially when moving from single-cell experiments to multiple cells. Fuel cell performance is degraded for many reasons when adding cells, but; possibly the most important, is contact resistance between the bipolar plate and gas diffusion layer (GDL). Contact resistance is in direct relation to the clamping configuration and clamping pressure applied to a FC stack. Simulation of a single cell and 16-cell FC was performed at various clamping pressures resulting in detailed 3D plots of stress and deformation. The stress on the GDL, for any value of clamping pressure simulated in this study, is around 1.5 MPa for the 16-cell stack and around 4 MPa in single cell simulations. Experimental testing of clamping pressure effects was performed on a 16-cell stack by placing a thin pressure-sensitive film between GDL and bipolar plate. Clamping pressure was applied using various loads, durations, and two types of GDLs. The results from experimental testing show that pressure on the GDL is in the range of 0–2.5 MPa. When using rectangular cells, experimental results show nearly zero pressure in the center of each cell and the center cells of the stack, regardless of clamping method.
  • Keywords
    Gas diffusion layer (GDL) , Proton exchange membrane fuel cells (PEMFC) , Bipolar Plates , contact resistance , Clamping pressure
  • Journal title
    International Journal of Hydrogen Energy
  • Serial Year
    2013
  • Journal title
    International Journal of Hydrogen Energy
  • Record number

    1862851