4.7 Article

TEM studies of low temperature cathode-plasma nitrided Ti6Al7Nb alloy

Journal

SURFACE & COATINGS TECHNOLOGY
Volume 359, Issue -, Pages 183-189

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2018.12.071

Keywords

Plasma nitriding; Ti6Al7Nb; XRD; TEM

Funding

  1. European Union from the European Social Fund [WND-POWR.03.02.00-00-I043/16]
  2. National Centre for Research and Development (NCBiR) [STRATEGMED2/266798/15/NCBR/2015]

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The Ti6Al7Nb alloy has been elaborated as a substitute for Ti6Al4V alloy especially for applications leading to its direct contact with human body fluids as the former totally eliminates the carcinogenic vanadium present in the latter. The Ti6Al7Nb presents so much needed high specific strength, but its aluminum addition is also harmful and will have to be taken care of. Nitriding could improve wear resistance of these alloys and form a diffusion barrier at least at first stage of their use. However, knowledge of phase composition of near surface area of Ti6Al7Nb after such treatment is still limited. Therefore, these experiments were planned to describe the effect of the plasma nitriding of Ti6Al7Nb alloy performed at 680 degrees C and 740 degrees C for 6 h. The transmission electron microscopy observations revealed that the plasma nitriding of this alloy performed at both of specified temperatures allows to produce a zone consisting of only three layers i.e. delta-TiN, alpha ''-Ti martensite and (alpha-Ti + Ti3Al) phases. The only difference between both treatments was that plasma nitriding at 740 degrees C caused a porosity of upper part of the delta-TiN layer, while the one formed at 680 degrees C was only slightly thinner, but fully dense. Penetration of the nitrogen into sub-surface areas during plasma nitriding of Ti6Al7Nb alloy pushes down both the aluminum and niobium deep into the substrate freeing the near surface beta-Ti from alloying additions. It allows to transform the latter into alpha ''-Ti martensite during cooling down. The last layer in the nitrided zone was found to be formed by a mixture of alpha-Ti and Ti3Al phases.

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