• Title of article

    Work hardening in micropillar compression: In situ experiments and modeling Original Research Article

  • Author/Authors

    D. Kiener، نويسنده , , P.J. Guruprasad، نويسنده , , S.M. Keralavarma، نويسنده , , G. Dehm، نويسنده , , A.A. Benzerga، نويسنده ,

  • Issue Information
    دوهفته نامه با شماره پیاپی سال 2011
  • Pages
    16
  • From page
    3825
  • To page
    3840
  • Abstract
    Experimental measurements and simulation results for the evolution of plastic deformation and hardening in micropillars are compared. The stress–strain response of high-symmetry Cu single crystals is experimentally determined using in situ micropillar compression. Discrete dislocation simulations are conducted within a two-dimensional plane-strain framework with the dislocations modeled as line singularities in an isotropic elastic medium. Physics-based constitutive rules are employed for an adequate representation of hardening. The numerical parameters entering the simulations are directly identified from a subset of experimental data. The experimental measurements and simulation results for the flow stress at various strain levels and the hardening rates are in good quantitative agreement. Both flow strength and hardening rate are size-dependent and increase with decreasing pillar size. The size effect in hardening is mainly caused by the build-up of geometrically necessary dislocations. Their evolution is observed to be size-dependent and more localized for smaller sample volumes, which is also reflected in local crystal misorientations.
  • Keywords
    In situ pillar compression , Flow stress , Hardening , Geometrically necessary dislocations (GNDs) , Discrete dislocation dynamics
  • Journal title
    ACTA Materialia
  • Serial Year
    2011
  • Journal title
    ACTA Materialia
  • Record number

    1145639