Acta Metallurgica Sinica (English Letters) ›› 2021, Vol. 34 ›› Issue (6): 825-833.DOI: 10.1007/s40195-020-01178-x
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Chongfeng Sun1, Shengqi Xi2(), Xiaofeng Dang2, Jianping Li1, Yongchun Guo1, Zhong Yang1, Yaping Bai1
Received:
2020-05-15
Revised:
2020-07-30
Accepted:
2020-09-13
Online:
2021-06-10
Published:
2021-05-31
Contact:
Shengqi Xi
About author:
Shengqi Xi. shqxixjtu@163.comChongfeng Sun, Shengqi Xi, Xiaofeng Dang, Jianping Li, Yongchun Guo, Zhong Yang, Yaping Bai. Formation of Fe-19 wt%Cr-9 wt%Ni Nanocrystalline Alloy with Excellent Corrosion Resistance: Phase Transition and Microstructure[J]. Acta Metallurgica Sinica (English Letters), 2021, 34(6): 825-833.
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Fe | Cr | Ni | Mo | Si | Total |
---|---|---|---|---|---|
66.21 | 22.56 | 8.34 | 2.70 | 0.19 | 100 |
Table 1 Chemical composition of commercial 304 stainless steel (wt%)
Fe | Cr | Ni | Mo | Si | Total |
---|---|---|---|---|---|
66.21 | 22.56 | 8.34 | 2.70 | 0.19 | 100 |
Fig. 2 a XRD patterns of the Fe-19 wt%Cr-9 wt%Ni alloy powder for different milling times; b curves of the crystallite size and internal strain of ferrite phase vs. milling time
Fig. 4 XRD patterns of Fe-19 wt%Cr-9 wt%Ni alloy: a sintered at different temperatures (powder milled for 24 h); b sintered at 1050 °C (powder milled for 8 h, 16 h and 24 h)
Fig. 6 Morphology features and chemical composition of Fe-19 wt%Cr-9 wt%Ni alloy sintered at different temperatures (powder milled for 24 h): a 950 °C, b 1050 °C, c chemical composition analysis of alloy sintered at 1050 °C
Fig. 7 a Potential dynamic polarization curves and b EIS curves of the Fe-19 wt%Cr-9 wt%Ni alloy sintered at 1050 °C (powder milled for 24 h) and the reference sample
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