Applied Physics Letters · 2014 · 32 citations · 13 references
Neutron DiffractionEngineeringSevere Plastic DeformationMechanical EngineeringWork HardeningMax PolycrystalsMicrostructure-strength RelationshipAnisotropic MaterialMaterials ScienceSitu Compression TestsStrain LocalizationSolid MechanicsPlasticityMechanical DeformationMicrostructureMicrostructure AnisotropyMechanical PropertiesApplied PhysicsDiffraction Peak EvolutionMechanics Of Materials
In situ compression tests combined with neutron diffraction were performed on Ti2AlN MAX polycrystals with lamellar anisotropic microstructure: the diffraction peak evolution (position and profile) with applied stress reveals that lamellar grains parallel to compression axis remain elastic while lamellar grains perpendicular to compression plastify, both families being subjected to strong variations of heterogeneous strains (types II and III). We demonstrate that this behavior originates from the complex response of the very anisotropic lamellar microstructure and explains the observation of reversible hysteretic loops when cycling MAX polycrystals even in the elastic regime.
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The MN+1AXN phases: A new class of solids
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Engineering, Severe Plastic Deformation, Mechanical Engineering +17