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A transition from localized shear banding to homogeneous superplastic flow in nanoglass
119
Citations
39
References
2013
Year
EngineeringSevere Plastic DeformationGlass-forming LiquidMechanical EngineeringGlass MaterialGrain SizeStructural MaterialsDense NetworkGlass TransitionRheologyNanomechanicsMaterials ScienceHomogeneous Superplastic FlowSolid MechanicsPlasticityMicrostructureViscoplastic FluidShear BandingMechanical PropertiesApplied PhysicsMetallic GlassesMechanics Of Materials
A promising remedy to the failure of metallic glasses (MGs) by shear banding is the use of a dense network of glass-glass interfaces, i.e., a nanoglass (NG). Here we investigate the effect of grain size (d) on the failure of NG by performing molecular dynamics simulations of tensile-loading on Cu50Zr50 NG with d = 5 to 15 nm. Our results reveal a drastic change in deformation mode from a single shear band (d ∼ 15 to 10 nm), to cooperative shear failure (d ∼ 10 to 5 nm), to homogeneous superplastic flow (d ≤ 5 nm). Our results suggest that grain size can be an effective design parameter to tune the mechanical properties of MGs.
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