Compressive cyclic response of PEM fuel cell gas diffusion media

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Date

2021

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Elsevier Ltd

Abstract

The fuel cell gas diffusion media (GDM) is a highly porous carbon-fiber-reinforced thin composite layer. The experimental response of these materials is observed to be highly nonlinear at low-stress levels. The cyclic mechanical response of GDM is investigated in terms of stiffness and damage parameters. The prediction of the state of deformation in GDM is vital in relating GDM's properties to ohmic and transport losses. To this end, a compressible form of the phenomenological model is proposed to capture the experimental cyclic response accurately. The model is constituent dependent; that is, the cumulative cyclic stress-strain response of GDM is a function of individual constituent phases present in the material. These individual constituents are porous matrix and reinforced fibers. The model hence derived for a typical GDM material, can predict residual strain, hysteresis, and damage quotient associated with the stress softening. This advanced model is implemented in the numerical domain to evaluate the response of the polymer electrolyte fuel cell (PEFC) unit cell. The stress-strain distribution fields are analyzed and compared with those of conventional GDM models. The results point to a remarkable deviation from the conventional notion of structural analysis. © 2020 Hydrogen Energy Publications LLC

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Keywords

Diffusion in gases, Graphite fibers, Polyelectrolytes, Porous materials, Reinforced plastics, Carbon fiber reinforced, Constituent phasis, Cyclic stress-strain response, Gas diffusion media, Mechanical response, Phenomenological modeling, Polymer electrolyte fuel cells, Stress-strain distributions, Proton exchange membrane fuel cells (PEMFC)

Citation

International Journal of Hydrogen Energy, 2021, 46, 7, pp. 5570-5579

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