• Title of article

    Flow/damage surfaces for fiber-reinforced metals having different periodic microstructures

  • Author/Authors

    Cliff J. Lissenden، نويسنده , , Steven M. Arnold ، نويسنده , , Saiganesh K. Iyer، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2000
  • Pages
    26
  • From page
    1049
  • To page
    1074
  • Abstract
    Flow/damage surfaces can be defined in terms of stress, inelastic strain rate, and internal variables using a thermodynamics framework. A macroscale definition relevant to thermodynamics and usable in an experimental program is employed to map out surfaces of constant inelastic power in various stress planes. The inelastic flow of a model silicon carbide/titanium composite system having rectangular, hexagonal, and square diagonal fiber packing arrays subjected to biaxial stresses is quantified by flow/damage surfaces that are determined numerically from micromechanics, using both finite element analysis and the generalized method of cells. Residual stresses from processing are explicitly included and damage in the form of fiber–matrix debonding under transverse tensile and/or shear loading is represented by a simple interface model. The influence of microstructural architecture is largest whenever fiber-matrix debonding is not an issue; for example in the presence of transverse compressive stresses. Additionally, as the fiber volume fraction increases, so does the effect of microstructural architecture. These results indicate that microstructural architecture needs to be accounted for in an accurate continuum model, thus complicating development of such a model. With regard to the micromechanics analysis, the overall inelastic flow predicted by the generalized method of cells is in excellent agreement with that predicted using a large number of displacement-based finite elements.
  • Keywords
    Fibre-reinforced composite material , A. Microstructures , B. Elastic-viscoplastic material , Micromechanics , C. Finite elements
  • Journal title
    International Journal of Plasticity
  • Serial Year
    2000
  • Journal title
    International Journal of Plasticity
  • Record number

    1256001