Acta Metallurgica Sinica (English Letters) ›› 2020, Vol. 33 ›› Issue (12): 1689-1698.DOI: 10.1007/s40195-020-01110-3
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Wei Song1, Xin-Guang Wang1(), Jin-Guo Li1(
), Ye-Shun Huang1, Jie Meng1, Yan-Hong Yang1, Jin-Lai Liu1, Ji-De Liu1, Yi-Zhou Zhou1, Xiao-Feng Sun1(
)
Received:
2020-04-08
Revised:
2020-05-20
Accepted:
2020-05-21
Online:
2020-12-10
Published:
2020-12-11
Contact:
Xin-Guang Wang,Jin-Guo Li,Xiao-Feng Sun
Wei Song, Xin-Guang Wang, Jin-Guo Li, Ye-Shun Huang, Jie Meng, Yan-Hong Yang, Jin-Lai Liu, Ji-De Liu, Yi-Zhou Zhou, Xiao-Feng Sun. Role of Ru on the Microstructural Evolution During Long-Term Aging of Ni-Based Single Crystal Superalloys[J]. Acta Metallurgica Sinica (English Letters), 2020, 33(12): 1689-1698.
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Alloy | Co | Cr | W+Mo+Ta | Re | Ru | Al | Hf | Ni |
---|---|---|---|---|---|---|---|---|
2.5 Ru | 11.7 | 4 | 15.4 | 5 | 2.5 | 6.2 | 0.1 | Bal |
3.5 Ru | 11.7 | 4 | 15.4 | 5 | 3.5 | 6.2 | 0.1 | Bal |
Table 1 Chemical compositions of the two alloys (wt.%)
Alloy | Co | Cr | W+Mo+Ta | Re | Ru | Al | Hf | Ni |
---|---|---|---|---|---|---|---|---|
2.5 Ru | 11.7 | 4 | 15.4 | 5 | 2.5 | 6.2 | 0.1 | Bal |
3.5 Ru | 11.7 | 4 | 15.4 | 5 | 3.5 | 6.2 | 0.1 | Bal |
Fig. 8 Microstructures of the two alloys after long-term aging at 1100 °C: a 100 h, b 200 h, c 500 h , d 1000 h of alloy 2.5 Ru; e 100 h, f 200 h, g 500 h, h 1000 h of alloy 3.5 Ru
Fig. 9 TEM images and corresponding selected area diffraction patterns (insets) of the μ phase of alloy 2.5 Ru after long-term aging of 1000 h at 1100 °C: a rod-like, b bulk-like
Alloy | Re | Ru | Co | Cr | W | Mo | |
---|---|---|---|---|---|---|---|
2.5 Ru | γ | 3.4±0.3 | 2.7±0.1 | 18.1±0.3 | 6.2±0.3 | 2.1±0.1 | 0.9±0.4 |
γ′ | 0.9±0.1 | 1.3±0.2 | 11.9±0.2 | 2.7±0.2 | 2.0±0.2 | 0.4±0.2 | |
Ki | 3.7 | 2.1 | 1.5 | 2.3 | 1.0 | 2.1 | |
3.5 Ru | γ | 3.2±0.2 | 3.1±0.3 | 21.9±0.5 | 9.6±0.4 | 3.2±0.1 | 1.8±0.3 |
γ′ | 1.1±0.2 | 1.7±0.1 | 14.6±0.3 | 4.7±0.3 | 2.2±0.1 | 0.8±0.5 | |
Ki | 2.9 | 1.8 | 1.5 | 2.1 | 1.2 | 2.1 |
Table 2 Chemical compositions obtained by EPMA (at.%) and the accordingly associated partitioning ratios of the two phases after 1000-h aging at 1100 °C
Alloy | Re | Ru | Co | Cr | W | Mo | |
---|---|---|---|---|---|---|---|
2.5 Ru | γ | 3.4±0.3 | 2.7±0.1 | 18.1±0.3 | 6.2±0.3 | 2.1±0.1 | 0.9±0.4 |
γ′ | 0.9±0.1 | 1.3±0.2 | 11.9±0.2 | 2.7±0.2 | 2.0±0.2 | 0.4±0.2 | |
Ki | 3.7 | 2.1 | 1.5 | 2.3 | 1.0 | 2.1 | |
3.5 Ru | γ | 3.2±0.2 | 3.1±0.3 | 21.9±0.5 | 9.6±0.4 | 3.2±0.1 | 1.8±0.3 |
γ′ | 1.1±0.2 | 1.7±0.1 | 14.6±0.3 | 4.7±0.3 | 2.2±0.1 | 0.8±0.5 | |
Ki | 2.9 | 1.8 | 1.5 | 2.1 | 1.2 | 2.1 |
Cr | Co | W | Mo | Ru | Re | Ta | Ni |
---|---|---|---|---|---|---|---|
6.3 | 11.4 | 19.1 | 6.3 | 2.7 | 33.4 | 5.4 | Bal |
Table 3 Compositions of TCP phase in the alloy 2.5 Ru (wt.%)
Cr | Co | W | Mo | Ru | Re | Ta | Ni |
---|---|---|---|---|---|---|---|
6.3 | 11.4 | 19.1 | 6.3 | 2.7 | 33.4 | 5.4 | Bal |
[1] | L. Liu, J. Meng, J.L. Liu, H.F. Zhang, X.D. Sun, Y.Z. Zhou, Acta Metall Sin.-Engl. Lett. 32, 381(2019) |
[2] | R.C. Reed, The superalloys: fundaments and applications (Cambridge University Press, Cambridge,2006) |
[3] | Y.B. Hu, T.S. Cao, C.Q. Cheng, L. Zhang, J. Zhao, Appl. Surf. Sci. 209, 484(2019) |
[4] | P.J. Warren, A. Cerezo, G.D.W. Smith, Smith, Mater. Sci. Eng. A 250, 88 (1998) |
[5] |
A. Epishin, U. Brückner, P.D. Portella, T. Link, Scr. Mater. 48, 455(2003)
DOI URL |
[6] |
J. Zhang, L.H. Lou, Acta Metall Sin. 54, 1637(2018). (in Chinese)
DOI URL |
[7] | A.C. Yeh, A. Sato, T. Kobayashi, H. Harada, Mater. Sci. Eng. A 490, 445 (2008) |
[8] |
F. Sun, J.X. Zhang, P. Liu, Q. Feng, X.D. Han, S.C. Mao, J. Alloys Compd 536, 80(2012)
DOI URL |
[9] |
B. Seiser, R. Drautz, D.G. Pettifor, Acta Mater. 59, 749(2011)
DOI URL |
[10] | R. Rettig, A. Heckl, R.F. Singer, Adv. Mater. Res. 278, 180(2011) |
[11] | X.P. Tan, J.L. Liu, X.P. Song, T. Jin, X.F. Sun, Z.Q. Hu, J. Mater. Sci. Technol. 27, 889(2011) |
[12] | W. Sun, X.Z. Qin, J.T. Guo, L.H. Lou, Acta Metall Sin. 51, 67(2015). (in Chinese) |
[13] | Y. Chao, W. Huan, T.G. Jian, Y.Q. He, Mater. Sci. Forum. 816, 546(2015) |
[14] | J.V. Goerler, I. Lopez-Galilea, L. Mujic-Roncery, O. Shchyglo, W. Theisen, I. Steinbacha, Acta Mater. 124, 151(2017) |
[15] | M.V. Acharya, G.E. Fuchs, Mater. Sci. Eng. A 381, 143 (2004) |
[16] | J.Y. Chen, Q. Feng, Z.Q. Sun, Scr. Mater. 63, 795(2010) |
[17] | X.P. Tan, J.L. Liu, T. Jin, Z.Q. Hu, H.U. Hong, B.G. Choi, I.S. Kim, C.Y. Jo, Mater. Sci. Eng. A 528, 8381 (2011) |
[18] | J.J. Huo, Q.Y. Shi, Y.R. Zheng, Q. Feng, J. Alloys Compd, J. Alloys Compd 15, 460(2017) |
[19] | J.X. Zhang, T. Murakumo, Y. Koizumi, H. Harada, J. Mater. Sci, J. Mater. Sci. 38, 4883(2003) |
[20] | W. Song, X.G. Wang, J.G. Li, L.H. Ye, G.C. Hou, Y.H. Yang, J.L. Liu, J.D. Liu, W.L. Pei, Y.Z. Zhou, X.F. Sun, Mater. Sci. Eng. A 772, 138646 (2020) |
[21] | A. Epishin, T. Link, U. Brückner, P.D. Portella, Acta Mater. 49, 4017(2001) |
[22] |
A.F. Giamei, D.L. Anton, Metall. Trans, 16, 1997 (1985)
DOI URL |
[23] | E.H.V.D. Molen, J.M. Oblak, O.H. Kriege, Metall. Trans. 2, 1627(1971) |
[24] | W.A. Sun, Acta Mater. 55, 313(2007) |
[25] | J. Komenda, P.J. Henderson, Scr. Mater. 37, 1821(1997) |
[26] | T. Link, S. Zabler, A. Epishin, A. Haibel, M. Bansal, X. Thibault, Mater. Sci. Eng. A 425, 47 (2006) |
[27] |
V.A. Vorontsov, J.S. Barnard, K.M. Rahman, H.Y. Yan, P.A. Midgley, D. Dye, Acta Mater. 120, 14(2016)
DOI URL |
[28] | J.W. Christian, Mater. Today 6, 53 (2003) |
[29] | Z.H. Tan, X.G. Wang, L.H. Ye, G.C. Hou, R. Li, Y.H. Yang, J.L. Liu, J.D. Liu, L. Yang, B. Wang, P. Dong, J.G. Li, Y.Z. Zhou, X.F. Sun, Mater. Sci. Eng. A 761, 138042 (2019) |
[30] | S. Lay, J.M. Missiaen, R. Bonnet, Scr. Mater. 35, 885(1996) |
[31] | W. Sun, X.Z. Qin, J.T. Guo, L.H. Lou, L.Z. Zhou, Acta Metall Sin. 51, 67(2015). (in Chinese) |
[32] | Q.Z. Gao, Y.J. Jiang, Z.Y. Liu, Mater. Sci. Eng. A 779, 139139 (2020) |
[33] | J.Y. Chen, B. Zhao, Q. Feng, L.M. Cao, Z.Q. Sun, Acta Metall Sin. 46, 897(2010). (in Chinese) |
[34] | Z.Y. Liu, Q.Z. Gao, H.L. Zhang, Mater. Sci. Eng. A 755, 106 (2019) |
[35] | A. Heckl, S. Neumeier, M. Göken, R.F. Singer, Mater. Sci. Eng. A 528, 3435 (2011) |
[36] | B. Wang, J. Zhang, X.J. Pan, T.W. Huang, L. Liu, H.Z. Fu, Acta Metall Sin. 53, 298(2017). (in Chinese) |
[37] | W.Z. Wang, T. Jin, J.L. Liu, X.F. Sun, H.R. Guan, Z.Q. Hu, Mater. Sci. Eng. A 148, 479 (2008) |
[38] | W.Y. Ma, Y.F. Han, S.S. Li, Y.R. Zheng, S.C. Gong, Acta Metall Sin. 42, 1191(2006). (in Chinese) |
[39] | H.B. Long, Y.N. Liu, S.C. Mao, H. Wei, J.X. Zhang, Q.S. Deng, Y.H. Chen, Z. Zhang, X.D. Han, Scr. Mater. 157, 100(2018) |
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