Effect of post weld heat treatments on microstructure evolution and type IV cracking behavior of the P91 steel welds joint
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[1] Javed Akram,et al. Dissimilar Metal Weld Joints of P91/Ni Alloy: Microstructural Characterization of HAZ of P91 and Stress Analysis at the Weld Interfaces , 2018, Journal of Materials Engineering and Performance.
[2] Pradeep Kumar,et al. Effect of post weld heat treatments on fracture frontier and type IV cracking nature of the crept P91 welded sample , 2018, Materials Science and Engineering: A.
[3] Leijun Li,et al. Correlation Between Intercritical Heat-Affected Zone and Type IV Creep Damage Zone in Grade 91 Steel , 2018, Metallurgical and Materials Transactions A.
[4] Pradeep Kumar,et al. Comparative study of autogenous tungsten inert gas welding and tungsten arc welding with filler wire for dissimilar P91 and P92 steel weld joint , 2018 .
[5] Pradeep Kumar,et al. Homogenization of P91 weldments using varying normalizing and tempering treatment , 2018 .
[6] X. Wu,et al. Influence of Laves phase on creep strength of modified 9Cr-1Mo steel , 2017 .
[7] Pradeep Kumar,et al. Microstructure characterization and charpy toughness of P91 weldment for as-welded, post-weld heat treatment and normalizing & tempering heat treatment , 2017, Metals and Materials International.
[8] Pradeep Kumar,et al. Microstructure and mechanical property relationship for different heat treatment and hydrogen level in multi-pass welded P91 steel joint , 2017 .
[9] Vijaya L. Manugula,et al. Role of evolving microstructure on the mechanical properties of electron beam welded ferritic-martensitic steel in the as-welded and post weld heat-treated states , 2017 .
[10] Pradeep Kumar,et al. Characterization of Cast and Forged (C&F) Gr. 91 Steel in Different Heat Treatment Condition , 2017 .
[11] Javed Akram,et al. Creep behavior of dissimilar metal weld joints between P91 and AISI 304 , 2017 .
[12] C. Pandey,et al. Effect of Groove Design and Post-Weld Heat Treatment on Microstructure and Mechanical Properties of P91 Steel Weld , 2016, Journal of Materials Engineering and Performance.
[13] C. Pandey,et al. Evolution of phases in P91 steel in various heat treatment conditions and their effect on microstructure stability and mechanical properties , 2016 .
[14] S. P. Selvi,et al. An assessment of creep deformation and rupture behaviour of 9Cr–1.8W–0.5Mo–VNb (ASME grade 92) steel , 2015 .
[15] G. Eggeler,et al. On the nucleation of Laves phase particles during high-temperature exposure and creep of tempered martensite ferritic steels , 2014 .
[16] D J Abson,et al. Review of type IV cracking of weldments in 9–12%Cr creep strength enhanced ferritic steels , 2013 .
[17] Wei Yan,et al. Microstructural stability of 9–12%Cr ferrite/martensite heat-resistant steels , 2013, Frontiers of Materials Science.
[18] John Hald,et al. Kinetics of Z-Phase Precipitation in 9 to 12 pct Cr Steels , 2013, Metallurgical and Materials Transactions A.
[19] Walter Bendick,et al. Evolution of dislocation density, size of subgrains and MX-type precipitates in a P91 steel during creep and during thermal ageing at 600 °C for more than 100,000 h , 2010 .
[20] John Francis,et al. Review Type IV cracking in ferritic power plant steels , 2006 .
[21] R. L. Klueh,et al. Elevated temperature ferritic and martensitic steels and their application to future nuclear reactors , 2005 .
[22] Michael L Santella,et al. Issues in replacing Cr-Mo steels and stainless steels with 9Cr-1Mo-V steel , 2004 .
[23] O. Sherby,et al. Influence of grain size, solute atoms and second-phase particles on creep behavior of polycrystalline solids , 2002 .
[24] Fujio Abe,et al. Creep rates and strengthening mechanisms in tungsten-strengthened 9Cr steels , 2001 .
[25] K. Miyahara,et al. Aging phenomena before the precipitation of the bulky Laves phase in Fe-10%Cr ferritic alloys , 1995 .
[26] B. Silwal,et al. Effect of Post-Weld Heat Treatment on Toughness of Heat-Affected Zone of Grade 91 Steel , 2013 .