Cite this article as: |
Zhi-jun Gao, Jing-yuan Li, Zhi-hui Feng, and Yi-de Wang, Influence of hot rolling on the microstructure of lean duplex stainless steel 2101, Int. J. Miner. Metall. Mater., 26(2019), No. 10, pp. 1266-1273. https://doi.org/10.1007/s12613-019-1841-6 |
Jing-yuan Li E-mail: lijy@ustb.edu.cn
[1] |
S.S. Sohn, K. Choi, J.H. Kwak, N.J. Kim, and S. Lee, Novel ferrite–austenite duplex lightweight steel with 77% ductility by transformation induced plasticity and twinning induced plasticity mechanisms, Acta Mater., 78(2014), p. 181.
|
[2] |
N. Jia, R.L. Peng, G.C. Chai, S. Johansson, and Y.D. Wang, Direct experimental mapping of microscale deformation heterogeneity in duplex stainless steel, Mater. Sci. Eng. A, 491(2008), No. 1-2, p. 425.
|
[3] |
Z.J. Gao, J.Y. Li, and Y.D. Wang, The crystallographic textures and anisotropy in 2507 super duplex stainless steel, Steel Res. Int,, 90(2019), No. 2, art. No. 1800397.
|
[4] |
Y. Zhao, W.N. Zhang, Z.Y. Liu, and G.D. Wang, Development of an easy-deformable Cr21 lean duplex stainless steel and the effect of heat treatment on its deformation mechanism, Mater. Sci. Eng. A, 702(2017), p. 279.
|
[5] |
S.F. Yang, Y. Wen, P. Yi, K. Xiao, and C.F. Dong, Effects of chitosan inhibitor on the electrochemical corrosion behavior of 2205 duplex stainless steel, Int. J. Miner. Metall. Mater., 24(2017), No. 11, p. 1260.
|
[6] |
Y.S. Sato, T.W. Nelson, C.J. Sterling, R.J. Steel, and C.O. Pettersson, Microstructure and mechanical properties of friction stir welded SAF 2507 super duplex stainless steel, Mater. Sci. Eng. A, 397(2005), No. 1-2, p. 376.
|
[7] |
I.N. Bastos, S.S. Tavares, F. Dalard, and R.P. Nogueira, Effect of microstructure on corrosion behavior of superduplex stainless steel at critical environment conditions, Scr. Mater., 57(2007), No. 10, p. 913.
|
[8] |
H. Miyamoto, T. Mimaki, and S. Hashimoto, Superplastic deformation of micro-specimens of duplex stainless steel, Mater. Sci. Eng. A, 319-321(2001), p. 779.
|
[9] |
K.H. Lo, C.H. Shek, and J.K.L. Lai, Recent developments in stainless steels, Mater. Sci. Eng. R, 65(2009), No. 4-6, p. 39.
|
[10] |
N. Zhou, R.L. Peng, and R. Pettersson, Surface integrity of 2304 duplex stainless steel after different grinding operations, J. Mater. Process. Technol., 229(2016), p. 294.
|
[11] |
P. Cizek and B.P. Wynne, A mechanism of ferrite softening in a duplex stainless steel deformed in hot torsion, Mater. Sci. Eng. A, 230(1997), No. 1-2, p. 88.
|
[12] |
W. Zhang, L.Z. Jiang, J.C. Hu, and S. H.M. Song, Effect of ageing on precipitation and impact energy of 2101 economical duplex stainless steel, Mater. Charact., 60(2009), No. 1, p. 50.
|
[13] |
H.J. Aval, Microstructural evolution and mechanical properties of friction stir-welded C71000 copper–nickel alloy and 304 austenitic stainless steel, Int. J. Miner. Metall. Mater., 25(2018), No. 11, p. 1294.
|
[14] |
Y.H. Yang and B. Yan, The microstructure and flow behavior of 2205 duplex stainless steels during high temperature compression deformation, Mater. Sci. Eng. A, 579(2013), p. 194.
|
[15] |
Y.Y. Liu, H.T. Yan, X.H. Wang, and M. Yan, Effect of hot deformation mode on the microstructure evolution of lean duplex stainless steel 2101, Mater. Sci. Eng. A, 575(2013), p. 41.
|
[16] |
C. Castan, F. Montheillet, and A. Perlade, Dynamic recrystallization mechanisms of an Fe–8% Al low density steel under hot rolling conditions, Scr. Mater., 68(2013), No. 60, p. 360.
|
[17] |
X.F. Wang, W.Q. Chen, and H.G. Zheng, Influence of isothermal aging on σ precipitation in super duplex stainless steel, Int. J. Miner. Metall. Mater., 17(2010), No. 4, p. 435.
|
[18] |
Y.L. Chen, T.R. Zhang, Y.D. Wang, and J.Y. Li, Effects of O, N and Ni contents on hot plasticity of 0Cr25Ni7Mo4N duplex stainless steel, Acta Metall. Sinica, 50(2014), No. 8, p. 905.
|
[19] |
L. Chen, X.C. Ma, X. Liu, and L.M. Wang, Processing map for hot working characteristics of a wrought 2205 duplex stainless steel, Mater. Des., 32(2011), No. 3, p. 1292.
|
[20] |
A. Momeni and K. Dehghani, Hot working behavior of 2205 austenite–ferrite duplex stainless steel characterized by constitutive equations and processing maps, Mater. Sci. Eng. A, 528(2011), No. 3, p. 1448.
|
[21] |
L. Duprez, B.C. De Cooman, and N. Akdut, Flow stress and ductility of duplex stainless steel during high-temperature torsion deformation, Metall. Mater. Trans. A, 33(2002), No. 7, p. 1931.
|
[22] |
M. Ma, H. Ding, Z.Y. Tang, J.W. Zhao, Z.H. Jiang, and G.W. Fan, Effects of temperature and strain rate on flow behavior and microstructural evolution of super duplex stainless steel under hot deformation, J. Iron Steel Res. Int., 23(2016), No. 3, p. 244.
|
[23] |
J.A. Jiménez, F. Carreño, O.A. Ruano, and M. Carsí, High temperature mechanical behaviour of δ–γ stainless steel, Mater. Sci. Technol., 15(1999), No. 2, p. 127.
|
[24] |
A. Iza-Mendia, A. Pinñol-Juez, J.J. Urcola, and I. Gutieérrez, Microstructural and mechanical behavior of a duplex stainless steel under hot working conditions, Metall. Mater. Trans. A, 29(1998), No. 12, p. 2975.
|
[25] |
Z.H. Feng, J.Y. Li, and Y.D. Wang, The microstructure evolution of lean duplex stainless steel 2101, Steel Res. Int., 88(2017), No. 12, art. No. 1700177.
|