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Cavitation Resistance of TiN Nanocrystalline Coatings with Various Thickness

Autorzy
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
TiN nanocrystalline coatings of various thicknesses deposited on austenitic stainless steel, X6CrNiTi18-10, by means of the cathodic arc evaporation method were investigated in a cavitation tunnel with a slot cavitator. The estimated cavitation resistance parameters of the coatings were the incubation period and total mass loss. It was found that the incubation periods of the 4 ěm and 7.8 ěm-thick TiN coatings were over two and half times longer than that of the uncoated X6CrNiTi 18-10 steel and the total mass losses of these coatings were approximately half lower than of the uncoated specimen. The scanning electron microscope analysis indicated that the damage process of the TiN-4 coating originates from the micro-folding and coating fracture arises on the top of the micro-folds, whiles the TiN-8 and TiN-12 coatings were removed in the form of thin flakes. The factors mainly responsible for cavitation resistance of the TiN coatings are ability to plastic deformation of the coating and coating adhesion.
Słowa kluczowe
Rocznik
Strony
12--24
Opis fizyczny
Bibliogr. 23 poz., rys., fot., tab.
Twórcy
autor
  • The Szewalski Institute of Fluid-Flow Machinery, Polish Academy of Sciences, Cavitation Group, ul. Fiszera 14, 80-231 Gdansk, Poland
Bibliografia
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  • 9. Yoon S.Y., Yoon S.Y., Chung W.S., Kim K.H.: Impact-wear behaviors of TiN and Ti-Al-N coatings na AISI D2 steel and WC-Co substrates. Surface and Coating Technology 177-178 (2004), pp.645-650.
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  • 15. Krella A., Czyżniewski A.: Influence of the substrate hardness on cavitation erosion resistance of TiN coating. Wear 263 (2007), pp. 395-401.
  • 16. Krella A., Czyżniewski A.: Investigation concerning the cavitation resistance of TiN coatings deposited on austenitic stainless steel at various temperatures. Wear 265 (2008), pp. 72-80.
  • 17. Leyland A., Matthews A.: On the significance of the H/E ratio in wear control: a nanocomposite coating approach to optimized tribological behaviour. Wear 246 (2000), pp. 1-11.
  • 18. Lima M.M., Godoy C., Modenesi P.J., Avelar-Batista J.C., Davoson A., Matthews A.: Coating fracture toughness determined by Vickers indentation: an important parameter in cavitation erosion resistance of WC-Co thermally sprayed coatings. Surface and Coating Technology 177-178 (2004), pp. 489-496.
  • 19. Han S., Lin J.H., Kuo J.J., He J.L., Shih H.C.: The cavitation-erosion phenomenon of chromium nitride coatings deposited using cathodic arc plasma deposition on steel. Surface and Coating Technology 161 (2002), pp. 20-25.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG8-0018-0039
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