• Title of article

    A micro-cell model of the effect of microstructure and defects on fatigue resistance in cast aluminum alloys Original Research Article

  • Author/Authors

    Y.X. Gao، نويسنده , , J.Z. Yi، نويسنده , , P.D. Lee، نويسنده , , T.C. Lindley، نويسنده ,

  • Issue Information
    دوهفته نامه با شماره پیاپی سال 2004
  • Pages
    15
  • From page
    5435
  • To page
    5449
  • Abstract
    Six different, industrially important, casting situations containing an array of typical microstructure and defects were investigated. Porosity, secondary dendrite arm spacing, Al-matrix, Si-particles, and Fe-rich intermetallics were experimentally identified as the major factors affecting the alloy’s resistance to fatigue. A micro-cell model was developed to quantitatively investigate the effect of these factors on fatigue resistance. The micro-cell captures the key microstructural features and is embedded into a macro material element at the specimen surface. A nonlinear isotropic/kinematic hardening law was used to describe the cyclic plastic behavior of the Al-matrix. This model enables the quantification of the accumulation and concentration of the microscale plastic deformation induced during fatigue loading by microstructural heterogeneities. The simulation results demonstrate that microscale plastic damage could occur even when the maximum far-field stress is below the nominal yield stress of the alloy. The degree of fatigue damage, in terms of the accumulation of plastic damage dissipation energy, was found to be sensitive to the microstructural features. Fatigue strength was estimated using the model and found to be in good agreement with experimental results.
  • Keywords
    Finite element analysis , Solidification microstructure , High cycle fatigue , Aluminum alloys , Micromechanical modeling
  • Journal title
    ACTA Materialia
  • Serial Year
    2004
  • Journal title
    ACTA Materialia
  • Record number

    1141109