Effect of boron on G115 martensitic heat resistant steel during aging at 650 °C
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Xitao Wang | Z. Liu | C. Dong
[1] Z. Liu,et al. Formation behavior of long needle-like M23C6 carbides in a nickel-based alloy without γ’ phase during long time aging , 2020 .
[2] Z. Liu,et al. Investigation of the microstructure and strength in G115 steel with the different concentration of tungsten during creep test , 2019, Materials Characterization.
[3] Z. Liu,et al. Evolution of the microstructure in aged G115 steels with the different concentration of tungsten , 2018, Materials Science and Engineering: A.
[4] Zhengdong Liu,et al. Toughness evolution of 9Cr–3W–3Co martensitic heat resistant steel during long time aging , 2016 .
[5] G. Eggeler,et al. On the nucleation of Laves phase particles during high-temperature exposure and creep of tempered martensite ferritic steels , 2014 .
[6] Wei Liu,et al. Effect of normalizing temperature on the strength of 9Cr–3W–3Co martensitic heat resistant steel , 2014 .
[7] Wei Liu,et al. Effect of tempering temperature on the toughness of 9Cr–3W–3Co martensitic heat resistant steel , 2014 .
[8] Wei Liu,et al. Effect of microstructural evolution on high-temperature strength of 9Cr–3W–3Co martensitic heat resistant steel under different aging conditions , 2013 .
[9] A. Shan,et al. Effect of thermo-mechanical treatment on microstructure and mechanical properties of P92 heat resistant steel , 2013 .
[10] Fang Liu,et al. Effect of Boron on Carbide Coarsening at 873 K (600 °C) in 9 to 12 pct Chromium Steels , 2012, Metallurgical and Materials Transactions A.
[11] N. Dudova,et al. Structural changes of tempered martensitic 9%Cr–2%W–3%Co steel during creep at 650 °C , 2012 .
[12] Z. Xia,et al. Control of precipitation behavior in reduced activation steels by intermediate heat treatment , 2011 .
[13] D. Rojas,et al. Investigations on coarsening of MX and M23C6 precipitates in 12% Cr creep resistant steels assisted by computational thermodynamics , 2010 .
[14] F. Abe,et al. Mechanisms for boron effect on microstructure and creep strength of ferritic power plant steels , 2009 .
[15] F. Abe. Analysis of creep rates of tempered martensitic 9%Cr steel based on microstructure evolution , 2009 .
[16] Xiaoxu Huang,et al. Effect of block size on the strength of lath martensite in low carbon steels , 2006 .
[17] D. Edmonds,et al. Microstructural and crystallographical study of carbides in 30wt.%Cr cast irons , 2005 .
[18] F. Abe,et al. Stabilization of martensitic microstructure in advanced 9Cr steel during creep at high temperature , 2004 .
[19] F. Abe. Bainitic and martensitic creep-resistant steels , 2004 .
[20] Gunther Eggeler,et al. The evolution of dislocation density during heat treatment and creep of tempered martensite ferritic steels , 2003 .
[21] M. Hättestrand,et al. Coarsening of precipitates in an advanced creep resistant 9% chromium steel—quantitative microscopy and simulations , 2002 .
[22] M. Hättestrand,et al. Boron distribution in 9–12% chromium steels , 1999 .
[23] Beijing,et al. DETERMINATION OF DISLOCATION DENSITY AND ITS INFLUENTIAL FACTORS IN BAINITE DUCTILE IRON , 1996 .
[24] C. Jia,et al. Crystallography of M23C6 and M6C precipitated in a low alloy steel , 1985 .