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Frictional wear resistance of the composite layers based on intermetallic phases of the Ti-Al system produced on the two phase Ti6Al2Cr2Mo titanium alloy

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Alloys of the intermetallic phases from the Ti-Al system belong to the group of new materials with unique physical, chemical and mechanical properties. Unfortunately, their liability to brittle fracture and their poor plasticity greatly restrict their practical application range. To obviate these drawbacks, these materials are produced in the form of layers on the surface of metallic materials. The paper presents the results of examinations of the structure and frictional wear resistance of the TiAl intermetallic surface layers with a near-surface diffusion Al203 and AIN zone produced on the binary Ti6Al2Cr2Mo titanium alloy using a hybrid process (also known as the multiplex process) that combines the magnetron sputtering of an Al coating with the glow discharge assisted oxidation process.
Rocznik
Strony
86--93
Opis fizyczny
Bibliogr. 14 poz., rys., tab.
Twórcy
autor
autor
autor
  • Faculty of Materials Science and Engineering. Warsaw University of Technology, Warsaw, Poland
Bibliografia
  • 1. Lutering G., Williams J.G, Titanium, Springer-Verlag, Berlin, Heidelberg, 2003.
  • 2. Loria E.A., Gamma titanium aluminides as prospective structural materials, Intermetallics, 8 (2000), pp. 1339-1345.
  • 3. Tetsui T, Gamma Ti aluminides for non areospace applications, Current Opinion in Solid State and Materials Science 4 (1999), pp.243-248.
  • 4. Stauhoff G., Intermetallics. VCH, Verlagsqesellschaft mGH, Weinheim, 1995.
  • 5. Matsubara T., Shibutani T.et.al.: Fabrication of a thick surface layer of A13Ti on Ti substrate by reactive-pulsed electric current sintering Intermetallics 8 (2000), pp.815-822.
  • 6. Ulmer L., Pitard F. et. al.: Formation of A13Ti during physical vapour deposition of titanium on aluminium, Microelectronic Engineering, 37-38 (1997), pp.381-387.
  • 7. Salehi M.: Effect of Ni-A1 intermetallic sublayers on tribological properties of crystallised Ni-P coatings on aluminium substrates Surf. Eng. 15 (1999) pp. 45-49.
  • 8. Łunarska E., Ziomek-Moroz A., Michalski A.: Electrochemical determing of penetrating porosity and the chemical and phase composition of pulse plasma deposited Ti-A1 and Ni-Al coatings. Intermetallics 9 (2001), pp.711-717.
  • 9. Niewolak L., Shemet V.: Alumina-forming coatings for titanium and titanium aluminides, Advanced Engineering Materials, vo1.3, 7 (2001), pp.496-500.
  • 10. Gil A., Niewolak L.: The Influence of silver addition on the microstructure and oxidation behaviour of a-TiAl based alloys. Inżynieria Materiałowa 4 (2001) pp.341-344.
  • 11. Zgłoszenie patentowe z dnia 23. 03. 2004 r. nr P.366529 pt.: „Sposób wytwarzania ochronnych kompozytowych warstw powierzchniowych na elementach ze stopów niklu lub tytanu".
  • 12. Polska norma PN-83 H-04302. Próba tarcia w układzie "3 wałeczki + stożek".
  • 13. Wierzchon T., Garbacz H., Ossowski M.: Structure and properties of Ti-Al piłntermetallic layers produced on titanium alloys by a duplex treatment, Mat. Scie. Forum., 475-479 (2005), pp. 3883-3886.
  • 14. Wierzchoń T., Ossowski M., Moskalewicz T., Czyrska-Filemonowicz A.: Structure and properties of composite layers produced on titanium alloys, 2nd International Conference Heat Treatment and Surface Engineering in Automotive Applications, Riva del Garda, Italy, CD.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG4-0028-0030
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