• Title of article

    Reversible stress-induced martensitic phase transformations in a bi-atomic crystal

  • Author/Authors

    Elliott، نويسنده , , Ryan S. and Triantafyllidis، نويسنده , , Nicolas and Shaw، نويسنده , , John A.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2011
  • Pages
    21
  • From page
    216
  • To page
    236
  • Abstract
    In an earlier work, Elliott et al. [2006a, Stability of crystalline solids—II: application to temperature-induced martensitic phase transformations in bi-atomic crystals. Journal of the Mechanics and Physics of Solids 54(1), 193–232], the authors used temperature-dependent atomic potentials and path-following bifurcation techniques to solve the nonlinear equilibrium equations and find the temperature-induced martensitic phase transformations in stress-free, perfect, equi-atomic binary B2 crystals. Using the same theoretical framework, the current work adds the influence of stress to study the modelʹs stress-induced martensitic phase transformations. position of a uniaxial Biot stress on the austenite (B2) crystal, lowers the symmetry of the problem, compared to the stress-free case, and leads to a large number of stable equilibrium paths. To determine which ones are possible reversible martensitic transformations, we use the (kinematic) concept of the maximal Ericksen–Pitteri neighborhood (max EPN) to select those equilibrium paths with lattice deformations that are closest, with respect to lattice-invariant shear, to the austenite phase and thus capable of a reversible transformation. It turns out that for our chosen parameters only one stable structure (distorted α IrV ) is found within the max EPN of the austenite in an appropriate stress window. The energy density of the corresponding configurations shows features of a stress-induced phase transformation between the higher symmetry austenite and lower symmetry martensite paths and suggests the existence of hysteretic stress–strain loops under isothermal load–unload conditions. Although the perfect crystal model developed in this work over-predicts many key material properties, such as the transformation stress and the Clausious–Clapeyron slope, when compared to real experimental values (based on actual polycrystalline specimens with defects), it is—to the authorsʹ knowledge—the first atomistic model that has been demonstrated to capture all essential trends and behavior observed in shape memory alloys.
  • Keywords
    Phase transformation , finite strain , Stability and bifurcation , Buckling , Thermoelastic material
  • Journal title
    Journal of the Mechanics and Physics of Solids
  • Serial Year
    2011
  • Journal title
    Journal of the Mechanics and Physics of Solids
  • Record number

    1427818