XRD Synchrotron Study of Carbide Precipitation in Martensitic Steels During Tempering

  • C. Bellot ,
  • P. Lamesle ,
  • D.Delagnes
Expand
  • 1) Universite deToulouse; Mines Albi, INSA, UPS, ISAE; ICA (Institut Clement Ader); Campus Jarlard, F-81013 Albi, France
    2) Aubert & Duval, BP1 F-63770 Les Ancizes, France

Received date: 2013-02-05

  Revised date: 2013-06-02

  Online published: 2013-09-13

Abstract

In order to improve the knowledge of the precipitation mechanism in martensitic steels containing carbon, XRD synchrotron experiments were performed. Firstly, the influence of Ni, Co and Al were studied and it was found that the precipitation of iron carbides occurs in same way as in Fe-C steel. However, with the addition of molybdenum and chromium in same steels, XRD synchrotron investigations clearly showed alloyed carbides directly precipitate, thereby preventing the iron carbides formation.

Cite this article

C. Bellot , P. Lamesle , D.Delagnes . XRD Synchrotron Study of Carbide Precipitation in Martensitic Steels During Tempering[J]. Acta Metallurgica Sinica (English Letters), 2013 , 26(5) : 553 -557 . DOI: 10.1007/s40195-013-0078-z

References

[1]G. Murry, Transformations dans les aciers, Techniques de l'ingenieur M1115 (1998).
[2]J.E. Krzanowski, Mater. Res. Soc. Symp. Proc.  62(1986) 273.
[3] H.K.D.H. Bhadeshia, Bainite in Steels, 2nd ed., Cambridge Institute of Materials, 2001, p.124.
[4]G.R. Speich and W.C. Leslie, Metall. Trans.  3(1972) 1043.
[5]G.B. Olson and M. Cohen, Metall. Mater. Trans. A  14(1983) 1057.
[6] M.K. Miller, P.A. Beaven and G.D.W. Smith, Metall. Mater.Trans. A  12  (1981) 1197.
[7]K.A. Taylor, G.B. Olson, M. Cohen and J.B. Van der Sande, Metall. Trans. A  20  (1989) 2749.
[8]L. Cheng, C.M. Brakman, B.M. Korevaar and E.J.Mittemeijer, Metall. Mater. Trans. A  19  (1988) 2415.
[9]G. Ghosh and G.B. Olson, Acta Mater.  50(2002)2099.
[10]P. Jacques, E. Girault, T. Catlin, N. Geerlofs, T. Kop,S. Van der Zwaag and F. Delannay, Mater. Sci. Technol. A 273-275  (1999) 475.
[11]W.S. Owen, Trans. Amer. Soc. Met.  46(1954)812.
[12]J.H. Jang, I.J. Kim and H.K.D.H. Bhadeshia, Scr. Mater.63(2010) 121.
[13]E. Kozeschnik and H.K.D.H. Bhadeshia, Mater. Sci.Technol.  24  (2008) 343.
[14]C.K. Ande and M.H.F Sluiter, Acta Mater.  55(2010) 6276.
[15]G.R. Speich, Metall. Trans.  4(1973)1043.
[16]W.M. Garrison and M.A. Rhoads, Trans. Indian Inst. Met.49  (1996) 151.
[17]D. Delagnes, F. Pettinari-Sturmel, M.H. Mathon, R.Danoix, F. Danoix, C. Bellot, P. Lamesle and A. Grellier, Acta Mater.  60  (2012) 5877.
[18] F. Danoix, R. Danoix, J. Akre, A. Grellier and D.Delagnes, J. Microscopy  244  (2011) 305.
[19] S.D. Erlach, H. Leitner, M. Bischof, H. Clemens, F.Danoix, D. Lemarchand and I. Siller, Mater. Sci. Eng. A  429(2006) 96.
[20] D.H. Ping, M. Ohnuma, M. Hirakawa, Y. Kadoya and K. Hono,Mater. Sci. Eng. A  394  (2005) 285.
[21] U.K. Viswanathan, G.K. Dey and V. Sethumadhavan, Mater.Sci. Eng. A  398  (2005) 367.
[22] W.C. Leslie and G.C. Rauch, Metall. Trans. A  9(1978) 343.
[23] K.B. Lee, H.R. Yang and H. Know, Metall. Mater. Trans.A 32(2001) 1659.
[24] H. Know, K.B. Lee and H.R. Yang, Metall. Mater. Trans. A27  (1996)
[25] G.V. Kurdjumov and A.G. Khachaturyan, Acta Metall.  23(1975) 1077.
 

Outlines

/