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      KCI등재 SCIE SCOPUS

      Effect of strain amplitude and temperature on creep-fatigue behaviors of 9-12 % Cr steel

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      https://www.riss.kr/link?id=A108463477

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      다국어 초록 (Multilingual Abstract)

      The creep-fatigue behaviors of P92 steel under strain range of 0.3 %-0.5 % and test temperature of 600-650 °C was studied carefully in this paper. With the increase of temperature, the creep-fatigue life is significantly reduced, and more vulnerable ...

      The creep-fatigue behaviors of P92 steel under strain range of 0.3 %-0.5 % and test temperature of 600-650 °C was studied carefully in this paper. With the increase of temperature, the creep-fatigue life is significantly reduced, and more vulnerable to temperature than strain amplitude. In addition, the dislocation density decreases with increasing creep fatigue, and the martensite laths become coarser. Furthermore, the increase of strain amplitude leads to more significant secondary cracks and fatigue striation. The higher temperature causes much deeper and larger dimples. During the test, the growth and accumulation of precipitates inevitably lead to stress concentration, resulting in material fracture and destruction.
      Finally, the linear cumulative damage (LCD), the modified ductility exhaustion (MDE) and the frequency separation life (FSL) model are used to predict the creep-fatigue life of P92 steel, and it is found that the frequency separation life model had the highest prediction accuracy among the threes.

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      참고문헌 (Reference) 논문관계도

      1 R. A. Barrett, "Thermomechanical fatigue in 9-12Cr steels : life prediction models and the effect of tensile dwell periods" 126 : 335-345, 2019

      2 L. Chang, "Thermal-mechanical fatigue behaviour and life prediction of P92steel, including average temperature and dwell effects" 9 (9): 819-837, 2020

      3 L. J. Coffin, "The Concept of Frequency Separation in Life Prediction for Time-Dependent Fatigue" General Electric Co 1976

      4 D. Chen, "Study on the influence factors of creep-fatigue life of 9 %-12 %Cr steel" 34 (34): 471-475, 2018

      5 S. Goyal, "Studies on creepfatigue interaction behaviour of Alloy 617M" 730 : 16-23, 2018

      6 Seen Chan Kim ; Jae‑Hyeok Shim ; Woo‑Sang Jung ; 최윤석, "Short‑Term Creep Data Based Long‑Term Creep Life Predictability for Grade 92 Steels and Its Microstructural Basis" 대한금속·재료학회 25 (25): 713-722, 2019

      7 A. Vyrostková, "Phase evolution in P92 and E911 weld metals during ageing" 480 (480): 289-298, 2008

      8 T. Y. Zhang, "P92 steel creep-fatigue interaction responses under hybrid stress-strain controlled loading and a life prediction model" 140 : 105837-, 2020

      9 Y. J. Chang, "Normalized creepfatigue life prediction model based on the energy dissipation during hold time" 460 : 195-203, 2007

      10 Z. L. Gao, "Nanoindentation investigation on the creep behavior of P92 steel weld joint after creep-fatigue loading" 134 : 105506-, 2020

      1 R. A. Barrett, "Thermomechanical fatigue in 9-12Cr steels : life prediction models and the effect of tensile dwell periods" 126 : 335-345, 2019

      2 L. Chang, "Thermal-mechanical fatigue behaviour and life prediction of P92steel, including average temperature and dwell effects" 9 (9): 819-837, 2020

      3 L. J. Coffin, "The Concept of Frequency Separation in Life Prediction for Time-Dependent Fatigue" General Electric Co 1976

      4 D. Chen, "Study on the influence factors of creep-fatigue life of 9 %-12 %Cr steel" 34 (34): 471-475, 2018

      5 S. Goyal, "Studies on creepfatigue interaction behaviour of Alloy 617M" 730 : 16-23, 2018

      6 Seen Chan Kim ; Jae‑Hyeok Shim ; Woo‑Sang Jung ; 최윤석, "Short‑Term Creep Data Based Long‑Term Creep Life Predictability for Grade 92 Steels and Its Microstructural Basis" 대한금속·재료학회 25 (25): 713-722, 2019

      7 A. Vyrostková, "Phase evolution in P92 and E911 weld metals during ageing" 480 (480): 289-298, 2008

      8 T. Y. Zhang, "P92 steel creep-fatigue interaction responses under hybrid stress-strain controlled loading and a life prediction model" 140 : 105837-, 2020

      9 Y. J. Chang, "Normalized creepfatigue life prediction model based on the energy dissipation during hold time" 460 : 195-203, 2007

      10 Z. L. Gao, "Nanoindentation investigation on the creep behavior of P92 steel weld joint after creep-fatigue loading" 134 : 105506-, 2020

      11 M. Kimura, "Microstructures of creep-fatigued 9-12 % Cr ferritic heat-resisting steels" 28 (28): 300-308, 2006

      12 B. Fournier, "Micromechanical model of the high temperature cyclic behavior of 9-12 %Cr martensitic steels" 27 (27): 1803-1816, 2011

      13 Z. Zhang, "Low-cycle fatigue properties of P92 ferritic-martensitic steel at elevated temperature" 25 (25): 1650-1662, 2016

      14 N. A. Alang, "Low cycle fatigue behaviour of ex-service P92 steel at elevated temperature" 2 : 3177-3184, 2016

      15 S. Taira, "Lifetime of structures subjected to varying load and temperature" Springer 1962

      16 S. Khayatzadeh, "Influence of thermal ageing on the creep behaviour of a P92 martensitic steel" 708 : 544-555, 2017

      17 T. Fischer, "Impact of frequency, hold time and atmosphere on creep-fatigue of a 9-12 %Cr steel from 300 °C-600 °C" 124 : 288-302, 2019

      18 Z. Y. Alsmadi, "High-temperature effects on creep-fatigue interaction of the Alloy 709 austenitic stainless steel" 143 : 105987-, 2021

      19 S. Z. Chavoshi, "Finite element analysis of creep-fatigue-oxidation interactions in 316H stainless steel" 116 : 104709-, 2020

      20 J. F. Mao, "Experimental study on creep-fatigue behaviors of Chinese P92 steel with consideration of several important factors" 142 : 105900-, 2020

      21 X. Wang, "Experimental and numerical characterization of low cycle fatigue and creep fatigue behaviour of P92 steel welded joint" 41 (41): 611-624, 2018

      22 J. J. Chen, "Effect of holding duration at maximum and minimum stress on creep fatigue interaction of P92 steel" 37 (37): 51-60, 2020

      23 K. Gopinath, "Designing P92 grade martensitic steel header pipes against creep-fatigue interaction loading condition : damage micromechanisms" 86 : 411-420, 2015

      24 D. Ji, "Creep-fatigue interaction and cyclic strain analysis in P92 steel based on test" 24 (24): 1441-1451, 2015

      25 B. Fournier, "Comparison of various 9-12 %Cr steels under fatigue and creep-fatigue loadings at high temperature" 528 (528): 6934-6945, 2011

      26 K. Mariappan, "Comparative assessment of remnant tensile properties of modified 9Cr-1Mo steel under prior low cycle fatigue and creep-fatigue interaction loading" 103 : 342-352, 2017

      27 K. Mariappan, "Comparative assessment of remnant tensile properties of modified 9Cr-1Mo steel under prior low cycle fatigue and creep-fatigue interaction loading" 103 : 342-352, 2017

      28 R. Sugiura, "Characterizations of creep-fatigue crack initiation and growth life for P92 using circular notched round bar specimen" 9 (9): 103956-, 2011

      29 L. Zhao, "Analysis on stress-strain behavior and life prediction of P92 steel under creep-fatigue interaction conditions" 43 (43): 2731-2743, 2020

      30 "ASME SA-335, Specification for Seamless Ferritic Alloy-Steel Pipe for High-Temperature Service"

      31 K. Barat, "A novel rate based methodology for creep fatigue life estimation of superalloys" 182 : 104064-, 2020

      32 D. Ji, "A novel creep-fatigue life prediction model for P92 steel on the basis of cyclic strain energy density" 25 (25): 4868-4874, 2016

      33 X. W. Wang, "A new empirical life prediction model for 9-12 %Cr steels under low cycle fatigue and creep fatigue interaction loadings" 9 (9): 183-, 2019

      34 Y. N. Fan, "A generalized hysteresis energy method for fatigue and creep-fatigue life prediction of 316L(N)" 625 : 205-212, 2015

      35 L. K. Shang, "A crystal plasticity-based approach for creep-fatigue life prediction and damage evaluation in a nickel-based superalloy" 143 : 106031-, 2021

      36 K. S. Li, "A crystal plasticity-based approach for creep-fatigue life prediction and damage evaluation in a nickel-based superalloy" 143 : 106031-, 2021

      37 K. S. Li, "A crystal plasticity-based approach for creep-fatigue life prediction and damage evaluation in a nickel-based superalloy" 143 : 106031-, 2021

      38 R. H. Piest, "A combined deformation mapductility exhaustion approach to creep-fatigue analysis" 49 (49): 7-17, 1981

      39 G. P. Potirniche, "A closure model for predicting crack growth under creep-fatigue loading" 125 : 58-71, 2019

      40 D. Rojas, "9 %Cr heat resistant steels:Alloy design, microstructure evolution and creep response at 650 °C" 528 : 5164-5176, 2011

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