The precipitation strengthening behavior of Cu-rich phase in Nb contained advanced Fe–Cr–Ni type austenitic heat resistant steel for USC power plant application
Tài liệu tham khảo
Viswanathan, 2005, U.S. program on materials technology for ultra-supercritical coal power plants, Journal of Materials Engineering and Performance, 14, 281, 10.1361/10599490524039
Lin, 2009, Ultrasupercritical power plant development and high temperature materials applications in China, Energy Materials, 3, 201, 10.1179/174892408X12590734881063
Viswanathan, 2004, Materials technology for coal-fired power plants, Advanced Materials & Processes, 73
Iseda, 2007, Long-term creep properties and microstructure of Super304H, TP347HFG and HR3C for advanced USC boilers, Energ Materials, 2, 199, 10.1179/174892408X382860
Minami, 1986, Microstructural changes in austenitic stainless steels during long-term aging, Materials Science and Technology, 2, 795, 10.1179/mst.1986.2.8.795
Sourmail, 2005, Microstructural evolution in two variants of NF709 at 1023 and 1073K, Metallurgical and Materials Transactions, 36, 23, 10.1007/s11661-005-0135-y
Viswanathan, 2001, Materials for ultrasupercritical coal power plants-Boiler materials, Journal of Materials Engineering and Performance, 10, 81, 10.1361/105994901770345394
Masuyama, 2001, History of power plants and progress in heat resistant steels, ISIJ International, 41, 612, 10.2355/isijinternational.41.612
Sourmail, 2001, Precipitation in creep resistant austenitic stainless steels, Materials Science and Technology, 17, 1, 10.1179/026708301101508972
Erneman, 2004, Precipitation reactions caused by nitrogen uptake during service at high temperatures of a niobium stabilised austenitic stainless steel, Acta Materialia, 52, 4337, 10.1016/j.actamat.2004.06.001
Chi, 2011, Strengthening effect of Cu-rich phase precipitation in 18Cr9Ni3CuNbN austenitic heat-resisting steel, Acta Metallurgica Sinica, 24, 141
Chi, 2010, 3DAP investigation of Precipitation behavior of Cu-rich phase in Super304H heat resistant steel, Acta Metallurgica Sinica, 46, 1141, 10.3724/SP.J.1037.2009.00853
Erhard, 2001, Hundred year of precipitation hardening, Journal of Light Metals, 1, 127, 10.1016/S1471-5317(01)00006-2
Reich, 1998, Evolution of Ω phase in an Al–Cu–Mg–Ag alloy—a three-dimensional atom probe study, Acta Materialia, 46, 6053, 10.1016/S1359-6454(98)00280-8
Niranjani, 2009, Development of high strength Al–Mg–Si AA6061 alloy through cold rolling and ageing, Materials Science and Engineering A, 515, 169, 10.1016/j.msea.2009.03.077
Goodman, 1973, An FIM-atom probe study of the precipitation of Copper from Iron-1.4 At. Pct Copper. Part I: Field-Ion microscopy, Metallurgical Transactions, 4, 2363, 10.1007/BF02669376
Goodman, 1973, An FIM-atom probe study of the precipitation of Copper from Iron-1.4 At. Pct Copper. Part II: Atom probe analyses, Metallurgical Transactions, 4, 2371, 10.1007/BF02669377
Miller, 1998, Low temperature copper solubilities in Fe–Cu–Ni, Materials Science and Engineering A, 250, 49, 10.1016/S0921-5093(98)00535-8
Othen, 1994, High-resolution electron microscopy studies of the structure of Cu precipitates in α-Fe, Philosophical Magazine A, 70, 1, 10.1080/01418619408242533
Pizzini, 1990, A fluorescence EXAFS study of the structure of copper-rich precipitates in Fe–Cu and Fe–Cu–Ni alloys, Philosophical Magazine Letters, 61, 223, 10.1080/09500839008202362
Maury, 1994, Copper precipitation in FeCu, FeCuMn, and FeCuNi dilute alloys followed by X-ray absorption spectroscopy, Journal of Physics: Condensed Matter, 6, 569
Deschamps, 2001, Precipitation kinetics and strengthening of a Fe–0.8wt%Cu alloy, ISIJ International, 41, 196, 10.2355/isijinternational.41.196
Zhang, 2006, Study of the influence of alloying elements on Cu precipitation in steel by non-classical nucleation theory, Acta Materialia, 54, 4183, 10.1016/j.actamat.2006.05.006
Monzen, 2000, The bcc-to-9R martensitic transformation of Cu precipitates and the relaxation process of elastic strains in an Fe–Cu alloy, Philosophical Magazine A, 80, 711, 10.1080/01418610008212077
Michael, 2004, Gagliano, Morris E F. Characterization of the nucleation and growth behavior of copper precipitates in low-carbon steels, Metallurgical and Materials Transactions A, 35, 2323, 10.1007/s11661-006-0212-x
Sawaragi, 1992, The development of a new 18-8 austenitic stainless steel (0.1C-18Cr-9Ni-3Cu-Nb,N) with high elevated temperature strength for fossil fired boilers, 4, 589
Sawaragi, 1994, Properties of a new 18-8 austenitic steel tube (Super304H) for fossil sired boilers after service exposure with high elevated temperature strength, The Sumitomo Search, 56, 34
Muramatsu, 1999
Igarashi, 2004, Development of 18-8 steel (Super304H) having high elevated temperature strength for fossil fired boilers, CAMP-ISI, 17, 336
Masuyama F. Alloy Development and Material Issues with Increasing Steam Temperature, In: Proceedings to the 4th International Conference on Advances in Materials Technology for Fossil Power Plants. Hilton Head Island, South Carolina, U.S., October 25–28, 2004.
Miller, 2000
Chen, 2002, Microstructural characterization of simulated heat affected zone in a nitrogen-containing 2205 duplex stainless steel, Materials Science and Engineering A, 338, 166, 10.1016/S0921-5093(02)00065-5
Kikuchi, 1991, Cellular precipitation involving both substitutional and interstitial solutes: cellular precipitation of Cr2N in Cr–Ni austenitic steels, Materials Science and Engineering A, 146, 131, 10.1016/0921-5093(91)90273-P
Isheim, 2006, An atom-probe tomographic study of the temporal evolution of the nanostructure of Fe–Cu based high-strength low-carbon steels, Scripta Materialia, 55, 35, 10.1016/j.scriptamat.2006.02.040
Yu, 1983, Atlas of Binary Alloys Phase Diagram, Shanghai: Shanghai Scientific and Technical Publishers, 334