Acta Metallurgica Sinica (English Letters) ›› 2025, Vol. 38 ›› Issue (3): 383-395.DOI: 10.1007/s40195-025-01814-4
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Yifan Li1,2, Shengyao Ma2,3, Xinrui Zhang2, Tong Xi2(), Chunguang Yang2(
), Hanyu Zhao2, Ke Yang2
Received:
2024-09-27
Revised:
2024-10-27
Accepted:
2024-11-19
Online:
2025-03-10
Published:
2025-01-15
Contact:
Tong Xi, txi@imr.ac.cn;Chunguang Yang, cgyang@imr.ac.cn
About author:
Yifan Li and Shengyao Ma equally contributed to this work.
Yifan Li, Shengyao Ma, Xinrui Zhang, Tong Xi, Chunguang Yang, Hanyu Zhao, Ke Yang. Copper Precipitation Behavior and Mechanical Properties of Cu-Bearing Ferritic Stainless Steel with Different Cr Addition[J]. Acta Metallurgica Sinica (English Letters), 2025, 38(3): 383-395.
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Alloys | C | Si | Mn | Cr | Cu | Ni | P | S | Fe |
---|---|---|---|---|---|---|---|---|---|
12Cr-1.5Cu | 0.021 | 0.35 | 0.45 | 12.23 | 1.52 | 0.34 | 0.012 | 0.005 | Bal. |
15Cr-1.5Cu | 0.019 | 0.36 | 0.47 | 15.32 | 1.54 | 0.35 | 0.013 | 0.004 | Bal. |
17Cr-1.5Cu | 0.025 | 0.31 | 0.44 | 17.15 | 1.49 | 0.32 | 0.016 | 0.006 | Bal. |
Table 1 Chemical compositions of experimental alloys (wt%)
Alloys | C | Si | Mn | Cr | Cu | Ni | P | S | Fe |
---|---|---|---|---|---|---|---|---|---|
12Cr-1.5Cu | 0.021 | 0.35 | 0.45 | 12.23 | 1.52 | 0.34 | 0.012 | 0.005 | Bal. |
15Cr-1.5Cu | 0.019 | 0.36 | 0.47 | 15.32 | 1.54 | 0.35 | 0.013 | 0.004 | Bal. |
17Cr-1.5Cu | 0.025 | 0.31 | 0.44 | 17.15 | 1.49 | 0.32 | 0.016 | 0.006 | Bal. |
Fig. 1 Equilibrium phase diagrams of Cu-bearing ferritic stainless steels with a 12Cr, b 15Cr, c 17Cr. d Volume fraction of Cu-rich precipitation as a function of temperature in different Cr-bearing investigated steels
Fig. 2 Dilatometric curves of Cu-bearing ferritic stainless steels with a 12Cr-1.5Cu, b 15Cr-1.5Cu, c 17Cr-1.5Cu at 10 °C/s and 0.15 °C/s cooling rate
Fig. 4 Microstructures of Cu-bearing ferritic stainless steel with different Cr addition: a 12Cr-1.5Cu, b 15Cr-1.5Cu, c 17Cr-1.5Cu. The subscripts 1 and 2 represent the air cooling and furnace cooling after solid solution treatment at 950 °C for 0.5 h, respectively
Fig. 5 a Hardness of three investigated steels after air cooling and furnace cooling to different temperature, b tensile stress-strain curves, c ultimate and yield tensile stress, d tensile elongation to failure of investigated steels
Fig. 6 Microstructures of 15Cr-1.5Cu steel after aging treated at different temperature following furnace cooling solid solution: a 500 °C/1 h, b 600 °C/1 h, c 700 °C/1 h, d 800 °C/1 h
Fig. 7 Bright field TEM images of the 15Cr-1.5Cu steel after aging treated at different temperature following furnace cooling solid solution: a 500 °C/1 h, b 600 °C/1 h, c 700 °C/1 h and d 800 °C/1 h
Fig. 8 Hardness of three investigated steels with different aging treatment after air cooling and furnace cooling followed solid solution treatment at 950 °C for 0.5 h
Fig. 9 Engineering stress strain curves of Cu-bearing ferritic stainless steel with different Cr addition after different aging treatment: a 12Cr-1.5Cu, b 15Cr-1.5Cu, c 17Cr-1.5Cu. The subscripts 1 and 2 represent the air cooling and furnace cooling after solid solution treatment at 950 °C for 30 min, respectively
Fig. 10 Bright field TEM images of Cu-bearing ferritic stainless steels after air cooling and furnace cooling (from 950 °C to 400 °C) followed solid solution treatment at 950 °C for 0.5 h
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