Publication | Closed Access
Velocity-Dependent Fatigue Crack Paths in Nanograined Pt Films
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Citations
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References
2008
Year
Materials ScienceMaterials EngineeringCrack AdvanceEngineeringSevere Plastic DeformationDislocation InteractionMechanical EngineeringApplied PhysicsNanograined Pt FilmsSolid MechanicsMicrostructure-strength RelationshipCrack FormationDynamic Crack PropagationNanograined FilmsLow-cycle FatigueMechanics Of MaterialsMicrostructure
Studies of crack growth in nanograined films assert that mechanical damage accumulates at grain boundaries irrespective of the crack velocity and loading conditions. This work shows that crack advance in nanograined Pt films involves a dislocation-slip mechanism that is a function of the crack growth rate and mode of loading. Crack paths in Pt were initially intergranular, but transitioned to a transgranular mode that persisted until catastrophic failure. This research demonstrates that crack growth mechanisms modeled for nanograined Ni cannot be generalized to other pure, metallic systems.
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