DOI QR코드

DOI QR Code

Effect of Mn Addition on Sintering Properties of Ti-10wt.%Al-xMn Powder Alloy

Ti-10wt.%Al-xMn 분말합금의 Mn첨가에 따른 소결특성 평가

  • Shin, Gi-Seung (Titanium Group, Korea Institute of Materials Science) ;
  • Hyun, Yong-Taek (Titanium Group, Korea Institute of Materials Science) ;
  • Park, Nho-Kwang (Titanium Group, Korea Institute of Materials Science) ;
  • Park, Yong-Ho (School of Materials Science and Engineering, Pusan National University) ;
  • Lee, Dong-Geun (Materials Metallurgical Engineering, Sunchon National University)
  • 신기승 (재료연구소 타이타늄연구실) ;
  • 현용택 (재료연구소 타이타늄연구실) ;
  • 박노광 (재료연구소 타이타늄연구실) ;
  • 박용호 (부산대학교 재료공학부) ;
  • 이동근 (순천대학교 신소재공학과)
  • Received : 2017.04.22
  • Accepted : 2017.06.17
  • Published : 2017.06.28

Abstract

Titanium alloys have high specific strength, excellent corrosion and wear resistance, as well as high heat-resistant strength compared to conventional steel materials. As intermetallic compounds based on Ti, TiAl alloys are becoming increasingly popular in the aerospace field because these alloys have low density and high creep properties. In spite of those advantages, the low ductility at room temperature and difficult machining performance of TiAl and $Ti_3Al$ materials has limited their potential applications. Titanium powder can be used in such cases for weight and cost reduction. Herein, pre-forms of Ti-Al-xMn powder alloys are fabricated by compression forming. In this process, Ti powder is added to Al and Mn powders and compressed, and the resulting mixture is subjected to various sintering temperature and holding times. The density of the powder-sintered specimens is measured and evaluated by correlation with phase formation, Mn addition, Kirkendall void, etc. Strong Al-Mn reactions can restrain Kirkendall void formation in Ti-Al-xMn powder alloys and result in increased density of the powder alloys. The effect of Al-Mn reactions and microstructural changes as well as Mn addition on the high-temperature compression properties are also analyzed for the Ti-Al-xMn powder alloys.

Keywords

References

  1. Y.T. Lee: Titanium, Steel & Metal News Co. Ltd (2009).
  2. M.J. Donachie, Jr.: Titanium A technical Guide, 2nd Edition, ASM (2000).
  3. Joining, Titanium alloys Handbook, MCiC-Hb-Oz, Battele (1972) Dec.4;72-1.
  4. D. G. Lee, S. H. Lee and Y. T. Lee: Mater. Sci. Eng. A, 486 (2008) 19. https://doi.org/10.1016/j.msea.2007.08.053
  5. P. Bartolotta, J. Barrett, T. Kelly and R. Smashey: JOM, 49 (1997) 48.
  6. Y. W. Kim: JOM, 41 (1989) 24.
  7. D. M. Dimiduk: Mater. Sci. Eng. A, 263 (1999) 281. https://doi.org/10.1016/S0921-5093(98)01158-7
  8. J. B. McAndrew and H. D. Kessler: Trans. AIME, 206 (1956) 1348.
  9. Y. S. Yang: M. S Dissertation, Inha University, Incheon (2005).
  10. W. Cho, A. W. Thompson and J. C. Williams: Metall. Trans. A, 21 (1990) 641. https://doi.org/10.1007/BF02671935
  11. Y. Umakoshi, M. Yamaguchi, T. Sakagkmi and T. Yamane: J. Mater. Sci., 24 (1989) 1599. https://doi.org/10.1007/BF01105677
  12. Y. J. Km, M. K. Choi and M. S. Kim: Korean J. Met. Mater., 36 (1998) 284.
  13. V. K. Vasudevan, S. A. Court, P. Kurath and H. L. Fraser: Scripta Metall., 23 (1989) 907. https://doi.org/10.1016/0036-9748(89)90269-X
  14. C. R. Feng, D. J. Michel and C. R. Crowe: Scripta Metall., 23 (1989) 1707. https://doi.org/10.1016/0036-9748(89)90347-5
  15. I. S. Ahn, D. H. Kwon, J. S. Kim and Y. L. Kim: J. Korean Powder Metall. Inst., 6 (1999) 42.
  16. D. E. Kim: Korean J. Met. Mater., 18 (1980) 593.

Cited by

  1. Effect of post heat treatment on fatigue properties of EBM 3D-printed Ti-6Al-4V alloy vol.25, pp.4, 2018, https://doi.org/10.4150/KPMI.2018.25.4.340