Acta Metallurgica Sinica (English Letters) ›› 2015, Vol. 28 ›› Issue (4): 424-429.DOI: 10.1007/s40195-015-0212-1
• Orginal Article • Previous Articles Next Articles
Hiroki Ishikawa1,2(), Chi Zhang1, Sheng-Wei Chen1, Zhi-Gang Yang1
Received:
2014-04-09
Revised:
2014-12-11
Online:
2015-01-20
Published:
2015-07-23
Hiroki Ishikawa, Chi Zhang, Sheng-Wei Chen, Zhi-Gang Yang. Precipitate Behavior in Fe-20Cr-30Ni-2Nb Austenitic Heat-Resistant Steel[J]. Acta Metallurgica Sinica (English Letters), 2015, 28(4): 424-429.
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Alloy | Cr | Ni | Nb | B | La | C | Fe |
---|---|---|---|---|---|---|---|
Base alloy | 18.35 | 31.07 | 3.28 | <0.01 | Bal. | ||
B-modified | 18.35 | 31.08 | 3.28 | 0.01 | <0.01 | Bal. | |
La-modified | 18.30 | 30.98 | 3.27 | 0.49 | <0.01 | Bal. | |
Both-modified | 18.30 | 30.99 | 3.27 | 0.01 | 0.49 | <0.01 | Bal. |
Table 1 Compositions of the experimental alloys (wt%)
Alloy | Cr | Ni | Nb | B | La | C | Fe |
---|---|---|---|---|---|---|---|
Base alloy | 18.35 | 31.07 | 3.28 | <0.01 | Bal. | ||
B-modified | 18.35 | 31.08 | 3.28 | 0.01 | <0.01 | Bal. | |
La-modified | 18.30 | 30.98 | 3.27 | 0.49 | <0.01 | Bal. | |
Both-modified | 18.30 | 30.99 | 3.27 | 0.01 | 0.49 | <0.01 | Bal. |
Fig. 1 SEM images of different alloys after heat treated at 1,150 °C for 20 min and then at 800 °C for 12 h followed water quenching: a base alloy; b B-modified alloy; c La-modified alloy; d B and La co-modified alloy
Alloy | fcc matrix | NbNi3 | LaNi3 | Cr5B3 | FeB |
---|---|---|---|---|---|
Base alloy | 92.5 | 7.41 | - | - | - |
B-modified | 92.6 | 7.00 | - | 0.14 | - |
La-modified | 99.1 | - | 0.80 | - | - |
Both-modified | 99.1 | - | 0.80 | - | 0.05 |
Table 2 Calculated results of the phase amount for different alloys (mol%)
Alloy | fcc matrix | NbNi3 | LaNi3 | Cr5B3 | FeB |
---|---|---|---|---|---|
Base alloy | 92.5 | 7.41 | - | - | - |
B-modified | 92.6 | 7.00 | - | 0.14 | - |
La-modified | 99.1 | - | 0.80 | - | - |
Both-modified | 99.1 | - | 0.80 | - | 0.05 |
Fig. 2 XRD patterns in the 2θ range from 34° to 49° of different alloys: a base alloy; b B-modified alloy; c La-modified alloy; d B and La co-modified alloy
[1] | Y. Noguchi, H. Okada, H. Semba, M. Yoshizawa,Proc. Eng. 10, 1127(2011) |
[2] | G. Chai, M. Boström, M. Olaison, U. Forsberg,Proc. Eng. 55, 232(2013) |
[3] | I. Tarigan, K. Kurata, N. Takata, T. Matsuo, M. Takeyama,Mater. Res. Sci. Symp. Proc. 1295, 317(2011) |
[4] | Z.H. Zhong, Y.F. Gu, Y. Yuan, Z. Shi,Mater. Lett. 109, 38(2013) |
[5] | S.J. Patel, J.J. DeBarbadillo, B.A. Baker, R.D. Gollihue, Proc. Eng. 55, 246(2013) |
[6] | T. Tokairin, K.V. Dahl, H.K. Danielsen, F.B. Grumsen, T. Sato, J. Hald, Mater. Sci. Eng. A 565, 285 (2013) |
[7] | I.S. ELMahallawi,Mater. Lett. 51, 375(2001) |
[8] | K.S. Min, K.J. Kim, S.W. Nam, J. Alloys Compd. 370, 223(2004) |
[9] | L.J. Wang, L.Y. Sheng, C.M. Hong,Mater. Des. 37, 349(2012) |
[10] | Y. Yamamoto, M. Takeyama, Z.P. Lu, C.T. Liu, N.D. Evans, P.J. Maziasz, M.P. Brady, Intermetallics 16, 453 (2008) |
[11] | Y. Hasebe, K. Hashimoto, T. Matsuo, M. Takeyama,Mater. Res. Sci. Symp. Proc. 1295, 171(2011) |
[12] | H.J. Kestenbach, L.O. Bueno,Mater. Sci. Eng. 66, 19(1984) |
[13] | Q. Lin, F. Guo, X. Zhu, J. Rare Earths 25, 485 (2007) |
[14] | L. Wang, Q. Lin, J. Ji, D. Lan, J. Alloys Compd. 408, 384(2006) |
[15] | M.J. Bennett, H.E. Bishop, P.R. Chalker, A.T. Tuson,Mater. Sci. Eng. 90, 177(1987) |
[16] | S.W. Chen, C. Zhang, Z.X. Xia, H. Ishikawa, Z.G. Yang, Mater. Sci. Eng. A 616, 183 (2014) |
[17] | N. Fujita, H.K.D.H. Bhadeshia, M. Kikuchi,Model. Simu. Mater. Sci. Eng. 12, 273(2004) |
[18] | N. Fujita, M. Kikuchi, K. Ohmura, ISIJ Int. 43, 1999 (2003) |
[19] | L.Y. Lan, C.L. Qiu, P. Zhou, D.W. Zhao, C.M. Li, X.H. Gao, L.X. Du, Acta Metall. Sin. (Engl. Lett.) 24, 473(2011) |
[20] | N. Fujita, M. Kikuchi, H.K.D.H. Bhadeshia, Metall. Mater. Trans. A 33, 3339 (2002) |
[21] | S. Hossein Nedjad, M. Nili Ahmadabadi, T. Furuhara, Mater. Sci. Eng. A 490, 105 (2008) |
[22] | T. Ogura, S. Hirosawa, T. Sato,Sci. Technol. Adv. Mater. 5, 491(2004) |
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