Thermomechanical stability and inelastic energy dissipation as durability criteria for fuel cell gas diffusion media with pre-assembly effects

dc.contributor.authorKoorata, P.K.
dc.contributor.authorBhat, S.D.
dc.date.accessioned2026-02-04T12:28:24Z
dc.date.issued2022
dc.description.abstractIn this article, pre-assembly hot-press pressure and thermal expansion effects in gas-diffusion layers (GDLs) are addressed to explore the practicalities of the constitutive model reported in the companion article. A facile technique is proposed to include deformation history dependent residual strain effects. The model is implemented in the numerical environment and compared with widely followed conventional models such as isotropic and orthotropic material models. With the normal and accelerated thermal expansion effects no significant variation in stresses or strains is reported with the compressible GDL model in contrast to the conventional incompressible form of the GDL model. The present work identifies the critical differences with advanced and extended variants of the model along with conventional GDL material models in terms of planar stress/strain distribution and the membrane response. Finally, the model is simulated for micro-cyclic stress loads of varying amplitudes that imitate the real working conditions of fuel cell. The inelastic energy dissipation in GDLs is predicted using the proposed model, which is utilized further to distinguish the safe (elastic) and unsafe (inelastic shakedown) operating limits. The inelastic collapse of GDLs is shown to be a active function of high amplitude micro-cyclic load with high initial clamping load. © 2021 Hydrogen Energy Publications LLC
dc.identifier.citationInternational Journal of Hydrogen Energy, 2022, 47, 2, pp. 1217-1228
dc.identifier.issn3603199
dc.identifier.urihttps://doi.org/10.1016/j.ijhydene.2021.10.073
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/22714
dc.publisherElsevier Ltd
dc.subjectDiffusion in gases
dc.subjectElasticity
dc.subjectEnergy dissipation
dc.subjectFinite element method
dc.subjectFuel cells
dc.subjectPresses (machine tools)
dc.subjectStability criteria
dc.subjectStrain
dc.subjectStructural design
dc.subjectThermal expansion
dc.subjectUnloading
dc.subjectWine
dc.subjectDissipation energy
dc.subjectGas diffusion layers
dc.subjectGas diffusion media
dc.subjectHot-press
dc.subjectLayer model
dc.subjectMaterial modeling
dc.subjectThermal expansion coefficients
dc.subjectThermal expansion effect
dc.subjectThermal load cycles
dc.subjectThermomechanical stability
dc.subjectConstitutive models
dc.titleThermomechanical stability and inelastic energy dissipation as durability criteria for fuel cell gas diffusion media with pre-assembly effects

Files

Collections