• Title of article

    Plastic strain and strain gradients at very small indentation depths Original Research Article

  • Author/Authors

    N.I Tymiak، نويسنده , , D.E. Kramer، نويسنده , , D.F. Bahr، نويسنده , , T.J Wyrobek، نويسنده , , W.W. Gerberich، نويسنده ,

  • Issue Information
    دوهفته نامه با شماره پیاپی سال 2001
  • Pages
    14
  • From page
    1021
  • To page
    1034
  • Abstract
    Plastic strains and their respective strain gradients produced by nanoindentation have been theoretically interpreted and experimentally measured at shallow indentation depths. Existing data for 〈100〉 tungsten with four different conical tip radii varying from 85 to 5000 nm and new data for four conical tips (R=0.5 to 20 μm) into 〈100〉 aluminum are presented. Theoretical results based on geometrically necessary dislocations and semi-empirical experimental continuum calculations are compared for spherical and wedge indenters. For a sharp wedge, both experimental continuum based and theoretical geometrical approaches suggest strain gradient decreasing with the increasing indentation depth, δ. In contrast, theoretical geometrical analysis for a spherical contact yields a depth independent strain gradient proportional to 1/R and continuum calculations suggest a slight increase of a strain gradient proportional to δ1/4/R3/4. Both single crystals exhibit about a factor of two decrease in hardness with increasing depth, irrespective of either increasing or decreasing average strain gradients. Implications to strain gradient plasticity and indentation size effect interpretations at very shallow depths are discussed.
  • Keywords
    Metallic , Hardness , Dislocations , Yield phenomena , Atomic force microscopy (AFM)
  • Journal title
    ACTA Materialia
  • Serial Year
    2001
  • Journal title
    ACTA Materialia
  • Record number

    1142159