Publication | Closed Access
Sample size effects on the large strain bursts in submicron aluminum pillars
94
Citations
24
References
2012
Year
Large Strain BurstsEngineeringSevere Plastic DeformationMechanical EngineeringSubmicron Aluminum PillarsStructural MaterialsHigh-rate LoadingStressstrain AnalysisMicrostructure-strength RelationshipCorrelated Dislocation GenerationPhysicsStrain LocalizationMicroscope Compression TestingSolid MechanicsMicrostructureDislocation InteractionSample Size EffectsApplied PhysicsDislocation NetworkMechanics Of MaterialsHigh Strain Rate
In situ transmission electron microscope compression testing of submicron Al pillars shows two sample size regimes with contrasting behavior underlying the large strain bursts. For small pillars, the bursts originate from explosive and highly correlated dislocation generation, characterized by very high collapse stresses and nearly dislocation-free post-collapse microstructure. For larger pillars, the bursts result from the reconstruction of jammed dislocation configurations, featuring relative low stress levels and retention of dislocation network after bursts.
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