박사

Study on precipitation mechanism and residual lifetime assessment of thermally aged cr-mo heat-resistant steels

김명연 2020년
논문상세정보
' Study on precipitation mechanism and residual lifetime assessment of thermally aged cr-mo heat-resistant steels' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 1.25Cr-0.5Mo steel
  • 1.25Cr-0.5Mo강
  • Cold-reheheater pipe
  • Heat-resistant steels
  • LMP 수명예측법
  • M2C
  • M2C 탄화물
  • Residual lifetime
  • Transmission electron microscopy
  • creep
  • lmp
  • pre-cipitation
  • 내열강
  • 냉간 재가열기
  • 석출 거동
  • 잔류 수명
  • 크리프
  • 투과전자현미경
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
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' Study on precipitation mechanism and residual lifetime assessment of thermally aged cr-mo heat-resistant steels' 의 참고문헌

  • [9] F. Masuyama, Alloy development and material issues with increasing steam temperature, Proceedings from Fourth International Conference on Advances in Materials Technology for Fossil Power plant, South Carolina, USA (2005).
  • [65] K. Sawada, M. Tabuchi, K. Kimura,Creep strength degradation of ASME P23/T23 steels Mater. Sci. Eng. A 513-514 (2009) 128-137.
    A 513-514 ( [2009]
  • [5] T. Fujita, Twenty-first century electricity generation plants and materials, Proceedings of International Workshop on Development of Advanced Heat Resisting Steels, NIMS Tsukuba, Japan (1999).
  • [57] B. Neubauer, V. Wedel, Rest life estimation of creeping components by means of replicas, ASME International conference on advanced in life prediction methods, New York, USA (1983).
  • [56] S. Cholizadeh, A review of non-destructive testing methods of composite materials, Procedia. Strut. Integrity 1 (2016) 50-57.
  • [50] ASTM E139 - 11, Standard test mehods for conducting creep, creep - rupture, and stress - rupture tests of metallic materials.
  • [40] R.L. Klueh, A.M. Naereldin, Microstructure and mechanical properties a 3Cr1.5Mo steel, Metall. Trans. A 18A (1987) 1279-1290.
    A 18A (1279-1290 . [1987]
  • [1] ASTM Tentative Standards, ASTM, Philadelphia (1934) 1138?1156.
  • [15] T. Onizawa, T. Wakai, M. Ando, K. Aoto, Effect of V and Nb on precipitation behavior and mechanical properties of highCr steel, Nucl. Eng. Des. 238 (2008) 408-416.
    238 ( [2008]
  • Z-phase formation in martensitic 12CrMoVNb steel
    12 ( [1996]
  • Ultrasonic non-destructive testing of pieces of complex geometry with a flexible phased array transducer
    38 ( [2000]
  • Twinning and strain-induced F.C.C ¡æ H.C.P transformation on the mechanical properties of Co-Ni-Cr-Mo alloys
    26 ( [1976]
  • The orientation relationship and growth direction of Mo2C in ferrite
    14 ( [1966]
  • Tantalum-containing Z-phase in 12 % Cr martensitic steels
    60 ( [2009]
  • Strengthening mechanisms of creep resistant tempered martensitic steel
    41 ( [2001]
  • Stabilization of martensitic microstructure in advanced 9 Cr steels during creep at high temperature
    A 378 ( [2004]
  • Review of Z-phase precipitation in 9-12wt%Cr steels
    32 ( [2016]
  • Residual lifetime assessment ofCold-reheater pipe inCoal-fired power plant through accelerated degradation test
    188 ( [2019]
  • Residual Life of Boiler Pressure Parts Made of the 13CrMo4-5 Steel After Long-Term Operation in aCreepConditions
    63 ( 2 ) ( [2018]
  • Reliability of non-destructive test techniques in the inspection of pipelines used in the oil industry
    85 ( [2008]
  • QuantitativeCarbide analysis using Rietveld method for 2.25Cr-1Mo-0.25V steel
    953-956 [2009]
  • Quantification of laves phase particles size in 9CrW steel
    47 ( [2001]
  • Process in the development of large turbine rotor forgings
    [1970]
  • Prediction of the laves phase morphology in Fe-Cr-W-C quaternary steels with the aid of system free energyConcept
    42 ( [2001]
  • Precipitation of Fe2W Laves phase and modeling of its direct influence on the strength of a 12Cr-2W steel
    89-97 [2006]
  • Precipitation Processes in Steel . London : Iron and Steel Institute
    64 ( [1959]
  • Power Systems : A Portal toCustomer Services for Electric Power Generation Mitsubishi Heavy Industries
    40 ( 2 ) ( [2003]
  • On the nucleation and dissolution process of Z-phase Cr ( V , Nb ) N in martensitic 12 % Cr steels
    A 505 ( [2009]
  • On the formation and growth of Mo-rich Laves phase particles during long-term creep of a 12 % chromium tempered martensite , ferritic steel
    61 ( [2009]
  • Non-destructive test techniques for boiler systems
    [1995]
  • Non-destructive determination of residual stress state in steel weldments by magnetic barkhausen noise technique
    43 ( [2010]
  • New materials for advanced steam turbines
    [1997]
  • Modified 9Cr-1Mo Steel for Advanced Steam Generator Applications
    [1991]
  • Modelling of kinetics in multicomponent multi-phase systems with spherical precipitates II : numerical solution and application
    A 385 (157 ? 165 [2004]
  • Microstructure evolution and creep properties of 2.25Cr-1Mo ferrite-pearlite and ferrite-bainite steels after exposure to elevated temperatures
    20 ( 2 ) ( [2017]
  • Microstructural stability during creep of Mo- or W-bearing 12Cr steels
    A 33A ( [2002]
  • Microstructural instability of 0.5Cr-0.5Mo-0.25V creepresistant steel during service at elevated temperatures
    47 ( [1981]
  • Microstructural evolution in T24 , a modified 2 ( 1/4 ) Cr-1Mo steel during creep after different heat treatments
    A 510-511 ( [2009]
  • Microstructural evolution and creep-rupture life estimation of high-Cr martensitic heat-resistant steels
    106 ( [2015]
  • Microstructural degradation of G.91 steel during creep under low stress
    A 528 ( [2011]
  • Microstructural changes in 1Cr-0.5Mo steel after 20 years of service
    [1985]
  • Microstructural change of a 5 % Cr steel weld metal during tempering
    A 242 ( [1998]
  • Materials for ultra-supercritical coalfired power plant boilers
    83 ( [2006]
  • Materials for Advanced Power Engineering Part 1
    [1994]
  • Material Degrada4tion of X20 Steel ( 12Cr-1MoVNi ) for Boiler Tube of Power Plant
    46 ( 5 ) ( [2008]
  • Long-term creep properties of low C-2.25Cr-1.6W-V-Nb steel ( T23/P23 ) for fossil fired and heat recovery boilers
    A 510-511 ( [2009]
  • Long-term creep deformation characteristics of advanced ferritic steels for USC power plants
    84 ( [2007]
  • Lattice orientation relationship between the M2C carbide and the ferrite matrix in the M50NiL bearing steel ,
    A 33A ( [2002]
  • Kinetics of Z-phase precipitation in 9 to 12 pct Cr steels
    2445-2452 . [2013]
  • Issues in replacing Cr-Mo steels and stainless steels with 9Cr-1Mo-V steel
    81 ( [2004]
  • Investigation on the growth kinetics of laves phase precipitates in 12 % Cr creep-resistant steels : Experimental and DICTRA calculations
    58 ( [2010]
  • Influence of long-term aging at 520 o C and 560 o C and the superimposed creep stress on the microstructure of 1.25Cr0.5Mo steel
    221-235 . [1992]
  • Influence of long-term aging and superimposed creep stress on the microstructure of 2.25Cr-1Mo steel
    315-326 [1993]
  • Influence of high pressure normalizing heat treatment on microstructure and creep strength of high Cr steels
    A 387-389 (628-632 [2004]
  • Influence of carbon content on microstructure and tempering behavior of 2 ? ? Cr 1Mo steel
    27 ( [1992]
  • Ferrite-M2C coherent phase equilibrium in AF1410 steel ,
    12 ( [1988]
  • Evolution of precipitated phases during prolonged tempering in a 9 % Cr1 % MoVNb ferriticmartensitic steel : Influence on creep performance
    A 528 ( [2011]
  • Efficiency improvements for the coalfired power plant retrofit with CO2 capture plant using chilled ammonia process
    151 ( [2015]
  • Effects of extended heat treatment on carbide evolution in Cr-Mo steels
    115 ( [2016]
  • Effect of trace elements on creep properties of 0.06C-2.25Cr-1.6W-0.1Mo-0.25v-0.05Nb steel
    39 ( [1999]
  • Effect of normalizing temperature on the strength of 9Cr-3W-3Co martensitic heat resistant steel
    A 597 ( [2014]
  • Effect of W on recovery of lath structure during creep of high chromium martensitic steels
    A 267 ( [1999]
  • Creep-Resistant Steels
    [2008]
  • Creep behavior of 2.25Cr1Mo steel-Effect of thermal ageing and pre-strain
    A 510-11 (136-141 [2009]
  • Creep behavior at the intercritical haz of a 1.25Cr0.5Mo steel
    42 ( [2002]
  • Creep behavior and stability of MX precipitates at high temperature in 9Cr-0.5Mo-1.8W-VNb steel
    A 319-321 ( [2001]
  • Creep and microstructural process in a low-alloy 2.25 % Cr1.6 % W steel ( ASTM Grade 23 )
    30 ( [2015]
  • Constitutive equations of the minimum creep rate for 9 % Cr heat resistant steels
    A 534 ( [2012]
  • Comparing the methods in determining residual life on the basis of creep tests of low-alloy Cr-Mo-V cast steels operated beyond the design service life
    152 ( [2017]
  • Coherent precipitation of M2C carbides in AF1410 steel
    A 117 ( [1989]
  • Coarsesning behavior of lath and its effect on creep rates in tempered martensitic 9Cr-W steels
    A 387-389 (565-569 [2004]
  • Coarsening resistance of M2C carbides in secondary hardening steels : Part III
    [1991]
  • Cerrelation between phase composition and life-time of 1Cr-0.5Mo steels during long-term service at elevated temperatures
    53 ( [1995]
  • Analysis of creep rates of tempered martensitic 9 % Cr steel based on microstructure evolution
    A 510-511 ( [2009]
  • Alloy design of creep resistant 9Cr steel using a dispersion of nano-sized carbonitrides
    84 ( [2007]
  • A. D. Karstensen , Integrity assessment of an embrittled steam turbine casing
    86 ( [2009]
  • A critical review of precipitation behavior in 1Cr-Mo-V rotor steels
    A 103 ( [1988]
  • A Study on Mechanical Properties Changes to Improve the Confidence of Remaining Life Evaluation for the Weldment of Power Plant Boiler Tube ( SA213-T12 )
    32 ( 3 ) ( [2014]