Journal of Applied Physics · 2014 · 33 citations · 42 references
Experimental VerificationEngineeringSevere Plastic DeformationMechanical EngineeringMolecular Dynamics ModelWork HardeningMolecular DynamicsMicrostructure-strength RelationshipDifferent Length ScaleMaterials ScienceSolid MechanicsMechanical DeformationMicrostructureAl-cu Eutectic AlloyDislocation InteractionDynamic Constitutive BehaviorMechanical PropertiesApplied PhysicsAlloy DesignLamellar Length ScaleAlloy PhaseMechanics Of Materials
This paper attempts to gain an understanding of the effect of lamellar length scale on the mechanical properties of two-phase metal-intermetallic eutectic structure. We first develop a molecular dynamics model for the in-situ grown eutectic interface followed by a model of deformation of Al-Al2Cu lamellar eutectic. Leveraging the insights obtained from the simulation on the behaviour of dislocations at different length scales of the eutectic, we present and explain the experimental results on Al-Al2Cu eutectic with various different lamellar spacing. The physics behind the mechanism is further quantified with help of atomic level energy model for different length scale as well as different strain. An atomic level energy partitioning of the lamellae and the interface regions reveals that the energy of the lamellae core are accumulated more due to dislocations irrespective of the length-scale. Whereas the energy of the interface is accumulated more due to dislocations when the length-scale is smaller, but the trend is reversed when the length-scale is large beyond a critical size of about 80 nm.
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Ductile versus brittle behaviour of crystals
J. R. Rice, Robb Thomson · Philosophical magazine · 1974 · 1.6K citations