Journal of Power Sources · 2015 · 47 citations · 21 references
EngineeringFluid MechanicsScalar TransportGas Diffusion LayersGas-liquid FlowChemical EngineeringFluid PropertiesTensor Material ParametersTransport PropertiesNumerical SimulationProton-exchange MembraneTransport PhenomenaThermodynamicsMultiphase FlowReservoir SimulationHeat TransferPore StructureDiffusion ResistanceEffective Transport PropertiesApplied PhysicsDiffusion ProcessGdl AnisotropyPorosityMass TransferThermal Engineering
Gas diffusion layers (GDLs) play an important role in proton exchange membrane fuel cells (PEMFCs) for the diffusion of reactant and the removal of product water. In the current study fresh and aged GDLs (Sigracet® GDL34BC) were investigated by X-ray computed tomography to obtain a representative 3D image of the real GDL structure. The examined GDL samples are taken from areas located under the flow channel and under the land. Additionally, a brand new Sigracet® GDL34BC was taken as a reference sample in order to find out the impact of fuel cell assembly on GDL. The produced 3D image data were used to calculate effective transport properties such as thermal and electrical conductivity, diffusivity, permeability and capillary pressure curves of the dry and partially saturated GDL. The simulation indicates flooding by product water occurs at contact angles lower than 125° depending on sample porosity. In addition, GDL anisotropy significantly affects the permeability as well as thermal and electrical conductivities. The calculated material bulk properties could be next used as input for CFD modelling of PEM fuel cells where GDL is usually assumed layer-like and homogeneous. Tensor material parameters allow to consider GDL anisotropy and lead to more realistic results.
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Fuel Cells: From Fundamentals to Applications
Materials Today · 2006 · 520 citations · Full text
Chemical Engineering, Electrical Engineering, Engineering +14