First-principles evaluation of the effect of alloying elements on the lattice parameter of a 23Cr25NiWCuCo austenitic stainless steel to model solid solution hardening contribution to the creep strength

2015 ◽  
Vol 626 ◽  
pp. 213-219 ◽  
Author(s):  
P.A. Korzhavyi ◽  
R. Sandström
1996 ◽  
Vol 460 ◽  
Author(s):  
A. L. R. Sabariz ◽  
G. Taylor

ABSTRACTThe intermetallic compound, RuAl with B2 CsCl type structure, has been shown to possess room-temperature toughness and plasticity. NiAl also forms a B2 compound and it is claimed that a pseudo-binary compound, (Ru,Ni)Al, may be formed because the difference in lattice parameter between the two binary phases is slight. In this work a study has been made of the mechanical properties of some polycrystalline compounds, across the RuAl-(Ru,Ni)Al pseudo-binary, prepared from high-purity elemental powders. Compressive yield stresses were measured between room-temperature and 900°C, and the mechanisms of plastic flow are discussed in relation to the dislocation structures observed by TEM. Hot-microhardness tests were made to provide an indication of the effect of solid-solution hardening.


2016 ◽  
Vol 138 (4) ◽  
Author(s):  
Fujio Abe

Recent progress in creep-resistant bainitic, martensitic, and austenitic steels for high efficiency coal-fired power plants is comprehensively reviewed with emphasis on long-term creep strength and microstructure stability at grain boundaries (GBs). The creep strength enhanced ferritic (CSEF) steels, such as Grade 91 (9Cr–1Mo–0.2V–0.05Nb), Grade 92 (9Cr–0.5Mo–1.8W–VNb), and Grade 122 (11Cr–0.4Mo–2W–1CuVNb), can offer the highest potential to meet the required flexibility for ultra-supercritical (USC) power plants operating at around 600 °C, because of their smaller thermal expansion and larger thermal conductivity than austenitic steels and Ni base alloys. Further improvement of creep strength of martensitic 9 to 12Cr steels has been achieved by substituting a part or all of Mo with W and also by the addition of Co, V, Nb, and boron. A martensitic 9Cr–3W–3Co–VNb steel strengthened by boron and MX nitrides, designated MARBN, exhibits not only much higher creep strength of base metal than Grade 91, Grade 92, and Grade 122 but also substantially no degradation in creep strength due to type IV fracture in welded joints at 650 °C. High-strength bainitic 2.25 to 3Cr steels have been developed by enhancing solid solution hardening due to W and precipitation hardening due to (V,Nb)C carbides in bainitic microstructure. The improvement of creep strength of austenitic steels has been achieved by solid solution hardening due to the addition of Mo, W, and nitrogen and by precipitation hardening due to the formation of fine MX (M = Ti, Nb, X = C, N), NbCrN, M23C6, Cu phase, and Fe2(Mo,W) Laves phase. The boundary and sub-boundary hardening are shown to be the most important strengthening mechanism in creep of creep-resistant steels and is enhanced by fine dispersions of precipitates along boundaries.


1994 ◽  
Vol 34 (9) ◽  
pp. 764-772 ◽  
Author(s):  
Naoto Ohkubo ◽  
Katsuhisa Miyakusu ◽  
Yoshihiro Uematsu ◽  
Hiroshi Kimura

2005 ◽  
Vol 475-479 ◽  
pp. 703-706 ◽  
Author(s):  
Yoko Yamabe-Mitarai ◽  
Tomohiro Maruko ◽  
Tomoaki Miyazawa ◽  
Tosiyuki Morino

Solid solution hardening effects of Ir was investigated to develop high temperature materials at 2223 K. Pt, Rh, Hf, and Zr were chosen as second elements because their solubility into Ir at 2223 K is over 2at% and the melting temperatures of Ir solid solution are above 2273 K. Compressive strength of Ir solid solution at 2223K were investigated. Solid solution hardening effect of Ir is discussed in terms of lattice parameter change and solubility,


2011 ◽  
Vol 56 (10) ◽  
pp. 1038-1042 ◽  
Author(s):  
Lei Gao ◽  
Jian Zhou ◽  
ZhiMei Sun ◽  
RongShi Chen ◽  
EnHou Han

2015 ◽  
Vol 100 ◽  
pp. 106-109 ◽  
Author(s):  
Xingming Zhang ◽  
Jianfeng Tang ◽  
Lei Deng ◽  
Huiqiu Deng ◽  
Shifang Xiao ◽  
...  

2012 ◽  
Vol 55 ◽  
pp. 269-272 ◽  
Author(s):  
Hualei Zhang ◽  
Börje Johansson ◽  
Rajeev Ahuja ◽  
Levente Vitos

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