• Title of article

    A two-scale model predicting the mechanical behavior of nanocrystalline solids

  • Author/Authors

    V. Péron-Lührs، نويسنده , , V. and Jérusalem، نويسنده , , A. and Sansoz، نويسنده , , F. and Stainier، نويسنده , , L. and Noels، نويسنده , , L.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    20
  • From page
    1895
  • To page
    1914
  • Abstract
    Polycrystalline materials, with nanosized grains ( < 100 nm), exhibit superior strength exceeding those of their coarse-grained counterparts. With such small grains, the deformation mechanisms taking place at grain boundaries (GBs) become dominant compared to the intragranular crystal plasticity. Recent studies have revealed that the deformation mechanisms are influenced by the GB network. For instance, a high yield stress in nanostructured metals can be obtained by choosing the relevant grain boundary character distribution (GBCD). In this paper we present an original numerical multiscale approach to predict the mechanical behavior of nanostructured metals according to their GBCD composed of either high angle (HA) GBs (HAB) or low angle (LA) GBs (LAB). Molecular simulations using the quasicontinuum method (QC) are performed to obtain the mechanical response at the nanoscale of GB undergoing simple shear (GB sliding behavior) and tensile loads (GB opening behavior). To simulate the grain behavior, a mechanical model of dislocation motions through a forest dislocation is calibrated using a nanoindentation simulation performed with QC. These QC results are then used in a finite element code (direct numerical simulation-DNS) as a GB constitutive model and as a grain constitutive model. This two-scale framework does not suffer from length scale limitations conventionally encountered when considering the two scales separately.
  • Keywords
    nanocrystal , Crystal plasticity , Quasicontinuum method , Finite element method , Grain boundary deformation
  • Journal title
    Journal of the Mechanics and Physics of Solids
  • Serial Year
    2013
  • Journal title
    Journal of the Mechanics and Physics of Solids
  • Record number

    1428231