J. Mater. Sci. Technol. ›› 2019, Vol. 35 ›› Issue (7): 1403-1411.DOI: 10.1016/j.jmst.2018.11.026
• Orginal Article • Previous Articles Next Articles
Ming-Song Chenab*(), Zong-Huai Zouab, Y.C. Linab*(
), Hong-Bin Liac, Guan-Qiang Wangab
Received:
2018-09-13
Revised:
2018-10-26
Accepted:
2018-11-26
Online:
2019-07-20
Published:
2019-06-20
Contact:
Chen Ming-Song,Lin Y.C.
About author:
1These authors contributed equally to this work.
Ming-Song Chen, Zong-Huai Zou, Y.C. Lin, Hong-Bin Li, Guan-Qiang Wang. Formation mechanism of large grains inside annealed microstructure of GH4169 superalloy by cellular automation method[J]. J. Mater. Sci. Technol., 2019, 35(7): 1403-1411.
Temperature (°C) | n | α |
---|---|---|
950 | 0.24 | 0.32 |
980 | -0.69 | 1.5 |
1010 | -1.02 | 1.33 |
Table 1 The values of α and n at different temperatures.
Temperature (°C) | n | α |
---|---|---|
950 | 0.24 | 0.32 |
980 | -0.69 | 1.5 |
1010 | -1.02 | 1.33 |
Temperature (K) | M0 (m4 J-1 s-1) |
---|---|
1253 | 4.05 × 10-13 |
1283 | 8.00 × 10-13 |
1313 | 1.42 × 10-12 |
Table 2 The mobility of high-angle boundaries of GH4169 superalloy.
Temperature (K) | M0 (m4 J-1 s-1) |
---|---|
1253 | 4.05 × 10-13 |
1283 | 8.00 × 10-13 |
1313 | 1.42 × 10-12 |
Fig. 5. Experimental and simulated microstructures at different condition; (a-c, g-i) simulated results; (d-f, j-l) experimental results, Aging conditions: (h, k) aged for 0 h; (i, l) aged for 12 h, the others aged for 24 h; Annealing condition: (a, d) T = 950 °C, t = 10 min; (b, e, h, i, l, l) T = 980 °C, t = 10 min; (c, f) T = 980 °C, t = 30 min; (g, j) T = 1010 °C, t = 10 min.
Fig. 8. CA simulation microstructures annealed at 980 °C with different time: (a) t = 50 s; (b) t = 200 s; (c) t = 300 s; (d) t = 600 s; (e) t = 900 s; (f) t = 1800 s.
Fig. 9. Dislocation density distribution at different annealing times: (a) t = 50 s; (b) t = 200 s; (c) t = 300 s; (d) t = 600 s; (e) t = 900 s; (f) t = 1800 s.
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