• Title of article

    Microstructural evolution and strain hardening of Fe–24Mn and Fe–30Mn alloys during tensile deformation Original Research Article

  • Author/Authors

    X. Liang، نويسنده , , J.R. McDermid، نويسنده , , O. Bouaziz، نويسنده , , X. Wang، نويسنده , , J.D. Embury، نويسنده , , H.S. Zurob، نويسنده ,

  • Issue Information
    دوهفته نامه با شماره پیاپی سال 2009
  • Pages
    11
  • From page
    3978
  • To page
    3988
  • Abstract
    High Mn steels demonstrate an exceptional combination of high strength and ductility owing to their sustained high work hardening rate during deformation. In the present work, the microstructural evolution and work hardening of Fe–30Mn and Fe–24Mn alloys during uniaxial tensile testing at 293 K and 77 K were investigated. The Fe–30Mn alloy did not undergo significant strain-induced phase transformations or twinning during deformation at 293 K, whereas these transformations were observed during deformation at 77 K. A modified Kocks–Mecking model was successfully applied to describe the strain hardening behavior of Fe–30Mn at both temperatures, and quantitatively identified the influence of stacking fault energy and strain-induced phase transformations on dynamic recovery. The Fe–24Mn alloy underwent extensive ε martensite transformation during deformation at both test temperatures. An analytical micromechanical model was successfully used to describe the work hardening of Fe–24Mn and permitted the calculation of the ε martensite stress–strain curve and tensile properties.
  • Keywords
    Fe–Mn alloys , Strain-induced transformations , Work hardening , Modelling
  • Journal title
    ACTA Materialia
  • Serial Year
    2009
  • Journal title
    ACTA Materialia
  • Record number

    1144384