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Modification of TiN coatings by ion implantation

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The high-speed steel HS 6-5-2 cutting inserts coated with TiN were subjected to ion implantation with both silicon (dose 2x1017Si+ /cm2 ) and silicon with nitrogen ions (dose (1+1)x1017(Si+ + N+ )/cm2 ) on the subsurface layer of the rake face. Microhardness was examined before and after ion implantation. The composition and structural properties of the subsurface layer were examined by Glow Discharge Optical Emission Spectroscopy (GD-OES). The turning tests of 40H construction steel with the use of the cutting inserts implanted and non-implanted were performed. During the tests the two components of the net cutting force (the main cutting force Fc and feed force Ff) as well as the wear parameters VB on the major flankalong with the surface roughness (Ra) were measured. The implanted inserts exhibited higher durability compared to non-implanted ones.
Słowa kluczowe
EN
Rocznik
Strony
190--193
Opis fizyczny
Bibliogr. 22 poz., rys., tab., wykr.
Twórcy
autor
  • Faculty of Mechanical Engineering, Kazimierz Pułaski University of Technology and Humanities, ul. Malczewskiego 29, 26–600 Radom, Poland
autor
  • Faculty of Mechanical Engineering, Kazimierz Pułaski University of Technology and Humanities, ul. Malczewskiego 29, 26–600 Radom, Poland
Bibliografia
  • 1. Baojian L., Bin D., Ye T.. (2014), Influence of niobium ion implantation on the microstructure, mechanical and tribological properties of TiAlN/CrN nano-multilayer coatings, Surface and Coatings Technology, 240, 405-412.
  • 2. Barbaszewski T., Dąbrowski M., Drwięga M., Gawlik J., Lipińska E. (1989), Implantation profiles of nitrogen and titanium in low energy bombarded high speed tool steel, Physica Status Solidi (A) Applied Research, 112(1), 347-352.
  • 3. Gerth J., Wiklund U. (2008), The influence of metallic interlayers on the adhesion of PVD TiN coatings on high-speed steel, Wear, 264, 885-892.
  • 4. Grančič B., Mikula M., Roch T., Zeman P., Satrapinskyy L., Gregor M., Plecenik T., Dobrocka E., Hajovska Z., Micusik M., Satka A., Zahoran M., Plecenik A., Kúš P. (2014), Effect of Si additional on mechanical properties and high temperature oxidation resistance of Ti-B-Si hard coatings, Surface and Coatings Technology, 240, 48-54.
  • 5. Hensel E., Sommer H., Knothe P., Richter E. (1989), Silicon nitride layer on tool steel produced by ion beam mixing and ion beam assisted deposition, Physica Status Solidi (A) Applied Research, 112(2), 533 – 539.
  • 6. Keenan M.P., Bradbury S.R., Afzal A., Ahmed W. (1998), Advanced surface engineering of circular saw blades for improved performance, Surface Engineering, 14(6), 463-468.
  • 7. Kieckow F., Kwietniewski C., Tentardini E.K., Reguly A., Baumvol Israel J.R. (2006), XPS and ion scattering studies on compound formation and interfacial mixing in TiN/Ti nanolayers on plasma nitride tool steel, Surface & Coatings Technology, 201, 3066- 3073.
  • 8. Lindskog P. (1993), Recent developments in European powder metallurgy, Powder Metallurgy International, 25, 3, 138-142.
  • 9. Liu L.J., Sood D.K., Manory R.R., Zhou W. (1995), Modification of tribomechanical properties of commercial TiN coatings by carbon ion implantation, Surface and Coatings Technology, 71, 159-166.
  • 10. Martev I.N., Dechev D.A., Ivanov N.P., Uzunov T.D., Kashchieva E.P. (2008), Characterization and properties of highly adhesive titanium nitride and tungsten nitride thin films, Fifteenth International Summer School on Vacuum, Electron and Ion Technologies, Journal of Physics: Conference Series, vol. 113 (012025), 1- 4.
  • 11. Mikula M., Grančič B., Buršíková V., Csuba A., Držík M., Kavecký S., Plecenik A., Kúš P. (2008), Mechanical properties of superhard TiB2 coatings prepared by DC magnetron sputtering, Vacuum, 82, 278-281.
  • 12. Mikula M., Grančič B., Roch T., Plecenik T., Vavra I., Dobrocka E., Satka A., Buršíková V., Držík M., Zahoran M., Plecenik A., Kúš P. (2011), The influence of low-energy ion bombardment on the microstructure development and mechanical properties of TiBx coatings, Vacuum, 85, 866-870.
  • 13. Musil J. (2012), Hard nanocomposite coatings: Thermal stability, oxidation resistance and toughness, Surface & Coatings Technology, 207, 50-65.
  • 14. Narojczyk J., Werner Z., Piekoszewski J., Szymczyk W. (2005), Effects of nitrogen implantation on lifetime of cutting tools made of SK5M tool steel, Vacuum, 78, 229-233.
  • 15. Perez F.J., Cristobal M.J., Hierro M.P., Pedraza F. (1999), The influence of implanted silicon on the cyclic oxidation behaviour of two different stainless steels, Surface and Coatings Technology, 120-121, 442-447.
  • 16. Seidel F., Stock H. R., Mayr P. (1997), Glow discharge optical spectroscopy depth profiles of ion implanted steel, titanium and titanium nitride coatings, Thin Solid Films, 308-309, 425-429.
  • 17. Shalnov K.V., Kukhta V.K., Uemura K., Ito Y. (2011), Applications of combined ion implantation for improved tribological performance, Surface and Coatings Technology, 206, 849-853.
  • 18. Sun P.L., Hsu C.H., Liu S.H., Su C.Y., Lin C.K. (2010), Analysis on microstructure and characteristics of TiAlN/CrN nano-multilayer films deposited by cathodic arc deposition, Thin Solid Films, 518, 7519-7522.
  • 19. Toshiba Nanoanalysis Corporation. Theory of RF glow discharge optical emission spectroscopy (RF GD-OES), (2015), http://www.nanoanalysis.co.jp/en/business/case_example_93.html
  • 20. Yang J.H., Cheng M.F., Luo X.D., Zhang T.H. (2007), Surface properties and microstructure of implanted TiN films using MEVVA ion source, Materials Science & Engineering A, 445-446, 558-562.
  • 21. Zhang D., Fei Q., Zhao H., Geng M., Zeng X., Chu P. K. (2004), Low vacuum MEVVA titanium and nitogen co-ion implantation into D2 steel substrates, Surface and Coatings Technology, 185, 264-267.
  • 22. Zhang P., Cai Z., Xiong W (2007), Influence of Si content and growth condition on the microstructure and mechanical properties of Ti-Si-N nanocomposite films, Surface and Coatings Technology, 201, 6819-6823.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-cfd39822-7d12-41d4-bc21-d00f9b8bf7ed
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