4.7 Article

Residual stress gradients in α-Al2O3 hard coatings determined by pencil-beam X-ray nanodiffraction: The influence of blasting media

Journal

SURFACE & COATINGS TECHNOLOGY
Volume 262, Issue -, Pages 134-140

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2014.12.028

Keywords

Hard coatings; X-ray diffraction; Nanodiffraction; Pencil X-ray beam; Blasting treatment; alpha-Al2O3

Funding

  1. Austrian Federal Government
  2. Bundesministerium fur Verkehr, Innovation und Technologie
  3. Bundesministerium far Wissenschaft, Forschung und Wirtschaft
  4. Styrian Provincial Government

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Post-deposition blasting treatments are widely used to introduce compressive residual stress into CVD hard coatings, which are typically in a tensile stress state after deposition on cemented carbide substrates. Within this work, alpha-Al2O3 coatings grown by CVD on TiCN base-layers were dry-blasted using a globular as well as an edged blasting medium and subsequently annealed at 900 degrees C. The as-deposited, blasted and annealed samples were characterized using cross-sectional synchrotron X-ray nanodiffraction using a pencil X-ray beam of 10 mu m x 100 nm in size as well as complementary synchrotron energy dispersive and laboratory monochromatic X-ray diffraction. The results document that the maximum compressive stress of 4 GPa in the samples blasted with the edged medium is significantly higher compared to the samples blasted with the globular medium, which showed maximum compressive stress of 2 GPa. The stress gradient obtained after blasting with the edged medium is steeper, while the zone with compressive stress reaches deeper into the coating for the samples blasted with the globular medium. In the substrate, significantly increased compressive stress of 400 +/- 60 MPa compared to 90 +/- 30 MPa in the as-deposited state was observed only after blasting with the globular medium and relaxed fully after annealing. In addition, the observed stress gradients were corroborated by the particle impact using a finite element contact mechanics approach. (C) 2014 Elsevier B.V. All rights reserved.

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