Open Access

THE ANALYSIS OF THE EFFECT OF TIME AND TEMPERATURE OF AIR ON THE COLOURING OF THE SURFACE LAYER OF O-Ti2AlNb BASED TITANIUM ALLOY

   | Jan 25, 2014

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1. Clemens H., Kestler H.: Processing and Applications of Intermetallic γ-TiAl-Based Alloy.Advanced Engineering Materials 9 (2000), pp. 551-570.Search in Google Scholar

2. Yoshihara M., Kim Y.W.: Oxidation behaviour of gamma alloys designed for high temperature oxidation. Intermetallics 13 (2005), pp. 952-958.Search in Google Scholar

3. Yamaguchi M., Inui H., Ito K.: High-temperature structural intermetallics. Acta Materialia 48 (2000), pp. 307-322.Search in Google Scholar

4. Loria E.A.: Gamma titanium aluminides as prospective structural materials. Intermetallics 8 (2000), pp. 1339-1345.10.1016/S0966-9795(00)00073-XSearch in Google Scholar

5. Szkliniarz W.: The alloys from the binary system of Ti-Al. Z. Bojar, W. Przetakiewicz, (Eds.), Metallic materials with the participation of intermetallic phases, Technical Military Academy, Warsaw (2006), pp. 66-88 (Chapter 2.2, in Polish).Search in Google Scholar

6. Appel F., Paul J.D.H., Oerhing M.: Gamma Titanium Aluminide Alloys, Science and Technology (2011) Wiley-VCH, GmbH & Co. KgaA.10.1002/9783527636204Search in Google Scholar

7. Kumpfert J., Leyens C.: Orthorombic titanium aluminides: Intermetallics with improved damage tolerance. Titanium and titanium alloys Fundamentals and applications. Ch. Leyens, M. Peters (Eds.) Wiley-VCH, GmbH & Co. KgaA 2003 (chapter 3)Search in Google Scholar

8. Kakare S.A., Toney J.B., Aswath P.B.: Oxidation of ductile particle reinforced Ti-48Al composite. Metallurgical and Materials Transactions 26A (1995), pp. 1835-1845.Search in Google Scholar

9. Chan K.S.: Developing Hydrogen Tolerant Microstructures for an Alpha-2 Titanium Aluminide Alloy. Metallurgical and Materials Transactions 23A (1992), pp. 497-507.10.1007/BF02801167Search in Google Scholar

10. Takasaki A., Furuya Y., Taneda Y.: Hydrogen uptake in titanium aluminides covered with oxide layers. Metallurgical and Materials Transactions 29A (1998), pp. 307-314.Search in Google Scholar

11. Kakare S.A., Toney J.B., Aswath P.B.: Oxidation of ductile particle reinforced Ti-48Al composite. Metallurgical and Materials Transactions 26A (1995), pp. 1835-1845.Search in Google Scholar

12. Shen Y., Ding, Wang F.: High temperature oxidation behaviour of Ti-Al-Nb ternary alloys.Journal of Materials Science 39 (2004), pp. 6583-6589.Search in Google Scholar

13. Toshio N., Takeshi I., Yatagai M., Yoshioka T.: Sulfidation processing and Cr addition to improve oxidation resistance of TiAl intermetallics in air at 1173 K. Intermetallics 8 (2000), pp. 371-379.Search in Google Scholar

14. Schaaf1 P., Quadakkers W.J., Zheng N., Wallura E., Gil A.: Beneficial and detrimental effects of nitrogen on the oxidation behaviour of TiAl-based intermetallics. Materials and Corrosion 48, Issue 1 (1997), pp. 28-34.Search in Google Scholar

15. Król S. : Cyclic oxidation of c-TiAl based multicomponent alloys with addition of Ta. Protection against Corrosion 11s/A (2005), pp. 94-198 (in Polish).Search in Google Scholar

16. Wu Y., Hagihara K., Umakoshi Y.: Improvement of cyclic oxidation resistance of Y-containing TiAl-based alloys with equiaxial gamma microstructures. Intermetallics 13 (2005), pp. 879-884.Search in Google Scholar

17. Król S., Małecka J., Zemčik L.: The effect of niobium on the kinetics oxidation behaviour of γ- TiAl. Protection against Corrosion 11s/A (2007), pp. 124-128 (in Polish).Search in Google Scholar

18. Shemet V., Tyagi A.K., Becker J.S., Lersch P., Singheiser L., Quadakkers W.J.: The formation of protective alumina-based scales during high-temperature air oxidation of γ -TiAl alloys.Oxidation of Metals 54 (2000), pp. 211-235Search in Google Scholar

19. Małecka J., Grzesik W., Hernas A.: An investigation on oxidation wear mechanisms of Ti-46Al-7Nb-0.7Cr-0.1Si-0.2Ni. Corrosion Science 52 (2010), pp. 263-272.Search in Google Scholar

20. Małecka J., Król S., Zemčik L.: The influence of selected parameters on the course of cyclic oxidation of Ti-46Al-7Nb, Advances in Materials Science Vol. 7, No 4/14 (2007) pp. 57-62.Search in Google Scholar

21. Małecka J. , Krzak-Roś J.: Preparation of SiO2 coating by sol-gel method, to improve hightemperature corrosion resistance of a γ-TiAl phase based alloy. Advances in Materials Science Vol. 12, No 4/34 (2012), pp. 5-12.Search in Google Scholar

22. Swadźba L., Moskal G., Hetmańczyk M., Mendala B., Jarczyk G.: Long-term cyclic oxidation of Al-Si diffusion coatings deposited by Arc-PVD on TiAlCrNb alloy. Surface and Coatings technology 184 (2004), pp. 93-101.Search in Google Scholar

23. Kumpfert J.: Intermetallic alloys based on orthorhombic titanium aluminide. Advanced Engineering Materials 3 (2001), pp. 851-864. 10.1002/1527-2648(200111)3:11<851::AID-ADEM851>3.0.CO;2-GSearch in Google Scholar

eISSN:
2083-4799
ISSN:
1730-2439
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Materials Sciences, Functional and Smart Materials