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  • 1.
    Hultman, Lars
    et al.
    Linköping University, The Institute of Technology. Linköping University, Department of Physics, Chemistry and Biology, Thin Film Physics.
    Birch, Jens
    Linköping University, Department of Physics, Chemistry and Biology, Thin Film Physics.
    Odén, Magnus
    Linköping University, The Institute of Technology. Linköping University, Department of Mechanical Engineering, Engineering Materials.
    Karlsson, Lennart
    Seco Tools AB Fagersta.
    Ljungcrantz, Henrik
    Impact Coatings AB Linköping.
    Review of the Themal and Mechanical Stability of TiN-based Thin Films1999In: Zeitschrift für Metallkunde, ISSN 0044-3093, Vol. 90, no 10, p. 803-813Article in journal (Refereed)
  • 2.
    Schlauer, Christian
    et al.
    Linköping University, Department of Mechanical Engineering, Engineering Materials. Linköping University, The Institute of Technology.
    Odén, Magnus
    Div of Enginnering Materials, Luleå University.
    Residual stress evolution and near-surface microstructure after turning of the nickel-based superalloy Inconel 7182005In: Zeitschrift für Metallkunde, ISSN 0044-3093, Vol. 96, no 4, p. 385-392Article in journal (Refereed)
    Abstract [en]

    Turning experiments have been carried out with the cutting speed and feed as variables that were systematically varied between 10 m min−1 and 1200 m min−1, and 0.1 mm and 0.5 mm, respectively, while all other cutting parameters were held constant. The arising residual stress distributions are presented and the influence of the varied machining parameters is investigated. Compressive residual stresses dominate the depth profiles but are often accompanied by a thin tensile residual stress layer at the surface. Microstructural investigations of near-surface cross-sections by means of transmission electron microscopy showed a zone where the grains had undergone plastic deformation, indicated by slip bands. On top of this layer, a surface layer exists where the grain size has radically decreased to only 50 nm to 130 nm. The grain size of the nanocrystalline layer is fairly constant for a certain cutting speed and feed, but depends on these cutting parameters. An increase in cutting speed and feed leads to larger grains in the nanocrystalline layer.

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