The Experts below are selected from a list of 219 Experts worldwide ranked by ideXlab platform

P. Gumbsch - One of the best experts on this subject based on the ideXlab platform.

  • Simulations of stress-strain heterogeneities in copper thin films : texture and substrate effects
    Computational Materials Science, 2007
    Co-Authors: Filip Siska, Samuel Forest, P. Gumbsch
    Abstract:

    Finite element simulations of the Elastic and Elastic–plastic deformation of copper thin films are performed in the presence or not of substrate. The investigated textures are {1 1 1} and {0 0 1}. In the anisotropic Elastic Case, {0 0 1} films are associated with more strain heterogeneities than {1 1 1} films. Strong plastic strain heterogeneities are found in {0 0 1} films. The presence of a substrate increases significantly the heterogeneity of stress–strain fields.

  • Simulations of stress–strain heterogeneities in copper thin films : texture and substrate effects
    Computational Materials Science, 2007
    Co-Authors: Filip Siska, Samuel Forest, P. Gumbsch
    Abstract:

    Abstract Finite element simulations of the Elastic and Elastic–plastic deformation of copper thin films are performed in the presence or not of substrate. The investigated textures are {1 1 1} and {0 0 1}. In the anisotropic Elastic Case, {0 0 1} films are associated with more strain heterogeneities than {1 1 1} films. Strong plastic strain heterogeneities are found in {0 0 1} films. The presence of a substrate increases significantly the heterogeneity of stress–strain fields.

Filip Siska - One of the best experts on this subject based on the ideXlab platform.

  • Simulations of stress-strain heterogeneities in copper thin films : texture and substrate effects
    Computational Materials Science, 2007
    Co-Authors: Filip Siska, Samuel Forest, P. Gumbsch
    Abstract:

    Finite element simulations of the Elastic and Elastic–plastic deformation of copper thin films are performed in the presence or not of substrate. The investigated textures are {1 1 1} and {0 0 1}. In the anisotropic Elastic Case, {0 0 1} films are associated with more strain heterogeneities than {1 1 1} films. Strong plastic strain heterogeneities are found in {0 0 1} films. The presence of a substrate increases significantly the heterogeneity of stress–strain fields.

  • Simulations of stress–strain heterogeneities in copper thin films : texture and substrate effects
    Computational Materials Science, 2007
    Co-Authors: Filip Siska, Samuel Forest, P. Gumbsch
    Abstract:

    Abstract Finite element simulations of the Elastic and Elastic–plastic deformation of copper thin films are performed in the presence or not of substrate. The investigated textures are {1 1 1} and {0 0 1}. In the anisotropic Elastic Case, {0 0 1} films are associated with more strain heterogeneities than {1 1 1} films. Strong plastic strain heterogeneities are found in {0 0 1} films. The presence of a substrate increases significantly the heterogeneity of stress–strain fields.

Anthony R. Bunsell - One of the best experts on this subject based on the ideXlab platform.

Samuel Forest - One of the best experts on this subject based on the ideXlab platform.

  • Simulations of stress-strain heterogeneities in copper thin films : texture and substrate effects
    Computational Materials Science, 2007
    Co-Authors: Filip Siska, Samuel Forest, P. Gumbsch
    Abstract:

    Finite element simulations of the Elastic and Elastic–plastic deformation of copper thin films are performed in the presence or not of substrate. The investigated textures are {1 1 1} and {0 0 1}. In the anisotropic Elastic Case, {0 0 1} films are associated with more strain heterogeneities than {1 1 1} films. Strong plastic strain heterogeneities are found in {0 0 1} films. The presence of a substrate increases significantly the heterogeneity of stress–strain fields.

  • Simulations of stress–strain heterogeneities in copper thin films : texture and substrate effects
    Computational Materials Science, 2007
    Co-Authors: Filip Siska, Samuel Forest, P. Gumbsch
    Abstract:

    Abstract Finite element simulations of the Elastic and Elastic–plastic deformation of copper thin films are performed in the presence or not of substrate. The investigated textures are {1 1 1} and {0 0 1}. In the anisotropic Elastic Case, {0 0 1} films are associated with more strain heterogeneities than {1 1 1} films. Strong plastic strain heterogeneities are found in {0 0 1} films. The presence of a substrate increases significantly the heterogeneity of stress–strain fields.

Sébastien Blassiau - One of the best experts on this subject based on the ideXlab platform.