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Original Articles

Creep – fatigue damage accumulation and interaction diagram based on metallographic interpretation of mechanisms

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Pages 27-54 | Published online: 24 Oct 2014

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Read on this site (7)

Javier Vivas, David De-Castro, Jonathan D. Poplawsky, Eberhard Altstadt, Martin Houska, Esteban Urones-Garrote, David San-Martín, Francisca G. Caballero, Marta Serrano & Carlos Capdevila. (2023) Creep strength boosted by a high-density of stable nanoprecipitates in high-chromium steels. European Journal of Materials 3:1.
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Markian P. Petkov, Elsiddig Elmukashfi & Alan C.F. Cocks. (2022) Multi-scale modelling of creep cavity nucleation and growth in polycrystalline Type 316 stainless steel. Philosophical Magazine 102:23, pages 2362-2411.
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R. P. Skelton. (2013) The energy density exhaustion method for assessing the creep-fatigue lives of specimens and components. Materials at High Temperatures 30:3, pages 183-201.
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Stuart Holdsworth. (2011) Creep-fatigue interaction in power plant steels. Materials at High Temperatures 28:3, pages 197-204.
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Richard Peter Skelton. (2008) Damage factors and upper bounds for interactive creep-fatigue crack growth. Materials at High Temperatures 25:4, pages 231-245.
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Articles from other publishers (83)

Debin Sun, Guoli Ma, Zhenhua Wan & Jinhai Gao. (2023) Study on creep-fatigue interaction mechanism and life prediction of aero-engine turbine blade. Engineering Failure Analysis 154, pages 107715.
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Mequanent Mulugeta Alamnie, Ephrem Taddesse & Inge Hoff. (2023) A study on permanent deformation and fatigue damage interaction in asphalt concrete. Construction and Building Materials 407, pages 133473.
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Hang-Hang Gu, Run-Zi Wang, Kun-Zhang, Ji Wang, Li Sun, Kai-Shang Li, Yu Liu, Xian-Cheng Zhang & Shan-Tung Tu. (2023) System-level creep-fatigue reliability evaluation by engineering damage mechanics incorporating cumulative damage-damage threshold interference. International Journal of Fatigue 176, pages 107768.
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Antonio M. Recuero, Markian Petkov, Benjamin W. Spencer & Pierre-Alexandre Juan. (2023) Continuum Damage Mechanics Modeling of High-Temperature Flaw Propagation: Application to Creep Crack Growth in 316H Standardized Specimens and Nuclear Reactor Components. Journal of Pressure Vessel Technology 145:5.
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Zhenyu Chen, Zhongliang Zhu, Bihui Wang, Chenhao Ma, Yutong Liu, Hasan Izhar Khan, Peiyuan Pan, Tianyi Zhang, Xishu Wang & Naiqiang Zhang. (2023) Effect of different loading conditions on corrosion fatigue crack growth rate of a nickel-based alloy in supercritical water. International Journal of Fatigue 175, pages 107815.
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Kai Song, Dong Wang, Lei Zhao, Lianyong Xu & Yongdian Han. (2023) An improved life prediction strategy at elevated temperature based on pure creep and fatigue data: Classical strain controlled and hybrid stress–strain controlled creep-fatigue test. Engineering Fracture Mechanics 289, pages 109412.
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Chuanyang Lu, Zhulai Qin, Shiyang Wang, Yanming He, Yuan Sun, Zengliang Gao & Shan-Tung Tu. (2023) Uncovering the high-temperature microstructural evolution and creep-fatigue damage mechanism of CMSX-4 brazed joints. International Journal of Fatigue 173, pages 107681.
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Xiaoxiao Wang, Jie Yang, Haofeng Chen & Fuzhen Xuan. (2023) Physics-based probabilistic assessment of creep-fatigue failure for pressurized components. International Journal of Mechanical Sciences 250, pages 108314.
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Yuxuan Song, Zhouxin Pan, Ting Yu, Shuiqing Zhou, Yuebing Li, Weiya Jin, Zengliang Gao & Yi Ma. (2023) Nanoindentation characterization on competing propagation between the transgranular and intergranular cracking of 316H steel under creep‐fatigue loading. Fatigue & Fracture of Engineering Materials & Structures 46:6, pages 2258-2271.
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Yuhao Guo, Gang Liu, Tianzhen Jiao, Xu Hu, Hao Zhang & Min Liu. (2023) Creep-fatigue damage behavior of a titanium alloy at room temperature: Experiments and modeling. International Journal of Mechanical Sciences 245, pages 108135.
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V.B. Pandey, I.V. Singh & B.K. Mishra. (2023) A new creep-fatigue interaction damage model and CDM-XFEM framework for creep-fatigue crack growth simulations. Theoretical and Applied Fracture Mechanics 124, pages 103740.
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Kai Zhao, Chunhe Yang, Hongling Ma & J.J.K. Daemen. (2023) A creep-fatigue model of rock salt and its application to the deformation analysis of CAES salt caverns. Computers and Geotechnics 156, pages 105311.
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Run-Zi Wang, Xian-Cheng Zhang, Hang-Hang Gu, Kai-Shang Li, Jian-Feng Wen, Hideo Miura, Ken Suzuki & Shan-Tung Tu. (2023) Oxidation-involved life prediction and damage assessment under generalized creep-fatigue loading conditions based on engineering damage mechanics. Journal of Materials Research and Technology 23, pages 114-130.
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Chunan Zhang, Tianyu Zhang, Xiaowei Wang, Jianfeng Wen, Yong Jiang, Jianming Gong & Shantung Tu. (2023) Assessment of prior fatigue damage and a new approach to predict remanent creep rupture of P92 steel. International Journal of Pressure Vessels and Piping 201, pages 104873.
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Li Sun, Xian-Cheng Zhang, Run-Zi Wang, Xiao-Wei Wang, Shan-Tung Tu, Ken Suzuki & Hideo Miura. (2023) Evaluation of fatigue and creep-fatigue damage levels on the basis of engineering damage mechanics approach. International Journal of Fatigue 166, pages 107277.
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Li Sun, Li-Qiang Liu, Run-Zi Wang, Xiao-Wei Wang, Jian-Ping Tan, Su-Juan Guo, Ji Wang, Ding-Wu Zhang, Xian-Cheng Zhang & Shan-Tung Tu. (2022) A modified damage-coupled viscoplastic constitutive model for capturing the asymmetric behavior of a nickel-based superalloy under wide creep-fatigue loadings. International Journal of Fatigue 164, pages 107160.
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Jingwei Zhao, Bingbing Li, Yiming Zheng, Mohammad Azadi & Xu Chen. (2022) Cyclic Deformation Behavior and Failure Mechanism of 316LN Stainless Steel under Creep-Fatigue Loading at 550 °C. Journal of Materials Engineering and Performance 31:10, pages 8314-8326.
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Kai-Shang Li, Ji Wang, Zhi-Chao Fan, Lv-Yi Cheng, Shu-Lei Yao, Run-Zi Wang, Xian-Cheng Zhang & Shan-Tung Tu. (2022) A life prediction method and damage assessment for creep-fatigue combined with high-low cyclic loading. International Journal of Fatigue 161, pages 106923.
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Soheila Riahi, Michael Evans, Martin Belusko, Ming Liu & Frank Bruno. (2022) Orientation impact on structural integrity of a shell and tube latent heat thermal energy storage system. Journal of Energy Storage 52, pages 104829.
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Sanjay Gothivarekar, Albert Van Bael, Reza Talemi & Sam Coppieters. (2022) DIC Strain Monitoring during Fatigue of Cold-Formed High Strength Steel. Key Engineering Materials 926, pages 1000-1006.
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A. Toshimitsu Yokobori, Haruki Ishikawa, Ryuji Sugiura, Toshihito Ohmi & Masaaki Tabuchi. (2022) Correlation of deformation with damage progression behavior around a notch tip under creep and fatigue conditions for W-added 9Cr steel including weld joint. Strength, Fracture and Complexity 15:1, pages 141-165.
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Shreya Mukherjee, Sujoy Kumar Kar, S. Sivaprasad, Soumitra Tarafder, G.B. Viswanathan & H.L. Fraser. (2022) Creep-Fatigue Response, failure mode and deformation mechanism of HAYNES 282 Ni based superalloy: Effect of dwell position and time. International Journal of Fatigue 159, pages 106820.
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Kai-Shang Li, Run-Zi Wang, Lv-Yi Cheng, Ti-Wen Lu, Xian-Cheng Zhang, Shan-Tung Tu, Guo-Dong Zhang & Zhi-Chao Fan. (2022) Dislocation-based crystal plasticity modelling of a nickel-based superalloy under dwell-fatigue: From life prediction to residual life assessment. International Journal of Fatigue 159, pages 106569.
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Mequanent Mulugeta Alamnie, Ephrem Taddesse & Inge Hoff. (2022) Advances in Permanent Deformation Modeling of Asphalt Concrete—A Review. Materials 15:10, pages 3480.
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Kai Song, Lei Zhao, Lianyong Xu, Yongdian Han & Kangda Hao. (2022) A modified energy model including mean stress and creep threshold stress effect for creep–fatigue life prediction. Fatigue & Fracture of Engineering Materials & Structures 45:5, pages 1299-1316.
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Hang Liang, Rui Zhan, Dongpo Wang, Caiyan Deng, Baichen Guo & Xiaohan Xu. (2022) Fatigue crack growth under overload/underload in different strength structural steels. Journal of Constructional Steel Research 192, pages 107213.
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Manu Puliyaneth & Haofeng Chen. (2022) Creep–Cyclic Plasticity and Damage Assessment of an SS304 Weldolet. Journal of Pressure Vessel Technology 144:2.
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Yuxuan Song, Zhouxin Pan, Yuebing Li, Weiya Jin, Zengliang Gao, Zhenggang Wu & Yi Ma. (2022) Nanoindentation characterization on the temperature-dependent fracture mechanism of Chinese 316H austenitic stainless steel under creep-fatigue interaction. Materials Characterization 186, pages 111806.
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Jingdong Hu, Changjun Liu, Fuzhen Xuan & Bo Chen. (2022) Modeling of cavity nucleation, early‐stage growth, and sintering in polycrystal under creep–fatigue interaction. Fatigue & Fracture of Engineering Materials & Structures 45:3, pages 882-903.
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Hang-Hang Gu, Run-Zi Wang, Shun-Peng Zhu, Xiao-Wei Wang, Dong-Ming Wang, Guo-Dong Zhang, Zhi-Chao Fan, Xian-Cheng Zhang & Shan-Tung Tu. (2022) Machine learning assisted probabilistic creep-fatigue damage assessment. International Journal of Fatigue 156, pages 106677.
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Kai-Shang Li, Lv-Yi Cheng, Yilun Xu, Run-Zi Wang, Yong Zhang, Xian-Cheng Zhang, Shan-Tung Tu & Hideo Miura. (2022) A dual-scale modelling approach for creep-fatigue crack initiation life prediction of holed structure in a nickel-based superalloy. International Journal of Fatigue 154, pages 106522.
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V. Shlyannikov, A. Sulamanidze & R. Yarullin. (2022) Fatigue and creep-fatigue crack growth in aviation turbine disk simulation models under variable amplitude loading. Engineering Failure Analysis 131, pages 105886.
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Valery Shlyannikov, Dmitry Kosov, Dmitry Fedorenkov, Xian‐Chen Zhang & Shan‐Tung Tu. (2021) Size effect in creep–fatigue crack growth interaction in P2M steel. Fatigue & Fracture of Engineering Materials & Structures 44:12, pages 3301-3319.
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Biao Ding, Weili Ren, Yunbo Zhong, Xiaotan Yuan, Jianchao Peng, Tianxiang Zheng, Zhe Shen, Yifeng Guo, Weidong Xuan, Jianbo Yu, Josip Brnic & Peter K. Liaw. (2021) Accuracy of the predicting for creep-fatigue cyclic life based on parameters in a characteristic cycle. Engineering Fracture Mechanics 255, pages 107955.
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Lv-Yi Cheng, Run-Zi Wang, Ji Wang, Shun-Peng Zhu, Peng-Cheng Zhao, Hideo Miura, Xian-Cheng Zhang & Shan-Tung Tu. (2021) Cycle-dependent creep-fatigue deformation and life predictions in a nickel-based superalloy at elevated temperature. International Journal of Mechanical Sciences 206, pages 106628.
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Hermann Riedel, Gerhard Maier & Heiner Oesterlin. (2021) A lifetime model for creep-fatigue interaction with applications to the creep resistant steel P92. International Journal of Fatigue 150, pages 106308.
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Run-Zi Wang, Lv-Yi Cheng, Shun-Peng Zhu, Peng-Cheng Zhao, Hideo Miura, Xian-Cheng Zhang & Shan-Tung Tu. (2021) Semi-quantitative creep-fatigue damage analysis based on diffraction-based misorientation mapping and the correlation to macroscopic damage evolutions. International Journal of Fatigue 149, pages 106227.
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J.-D. Hu, F.-Z. Xuan, C.-J. Liu & B. Chen. (2021) Modelling of cavity nucleation under creep-fatigue interaction. Mechanics of Materials 156, pages 103799.
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Nuohao Liu, Huwei Dai, Lianyong Xu, Zhengxin Tang, Chenyang Li, Junhong Zhang & Jiewei Lin. (2021) Modeling and effect analysis on crack growth behavior of Hastelloy X under high temperature creep-fatigue interaction. International Journal of Mechanical Sciences 195, pages 106219.
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Kai-Shang Li, Run-Zi Wang, Guang-Jian Yuan, Shun-Peng Zhu, Xian-Cheng Zhang, Shan-Tung Tu & Hideo Miura. (2021) A crystal plasticity-based approach for creep-fatigue life prediction and damage evaluation in a nickel-based superalloy. International Journal of Fatigue 143, pages 106031.
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Hugo Wärner, Jinghao Xu, Guocai Chai, Johan Moverare & Mattias Calmunger. (2021) Microstructural evolution during high temperature dwell-fatigue of austenitic stainless steels. International Journal of Fatigue 143, pages 105990.
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Javier Vivas, David San-Martin, Francisca G. Caballero & Carlos Capdevila. 2021. Welding - Modern Topics. Welding - Modern Topics.
Smith Salifu, Dawood Desai & Schalk Kok. (2021) Numerical investigation of creep-fatigue interaction of straight P91 steam pipe subjected to start-up and shutdown cycles. Materials Today: Proceedings 38, pages 1018-1023.
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Run-Zi Wang, Hao Chen, Yang Zhang, Xian-Cheng Zhang & Shan-Tung Tu. (2020) Creep-fatigue life prediction in nickel-based superalloy GH4169 based on microstructural damage quantification with the help of electron backscatter diffraction. Materials & Design 195, pages 108939.
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Zhengxin Tang, Hongyang Jing, Lianyong Xu, Lei Zhao, Yongdian Han, Haizhou Li & Ninshu Ma. (2020) Investigation of creep-fatigue crack growth of G115 steel using a novel damage model. International Journal of Mechanical Sciences 183, pages 105827.
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Saeed Z. Chavoshi, Vito L. Tagarielli, Lei Zhao & Kamran Nikbin. (2020) Finite element analysis of creep-fatigue-oxidation interactions in 316H stainless steel. Engineering Failure Analysis 116, pages 104709.
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Valery Shlyannikov, Ivan Ishtyryakov & Andrey Tumanov. (2020) Characterization of the nonlinear fracture resistance parameters for an aviation GTE turbine disc. Fatigue & Fracture of Engineering Materials & Structures 43:8, pages 1686-1702.
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Smith Salifu, Dawood Desai & Schalk Kok. (2020) Comparative evaluation of creep response of X20 and P91 steam piping networks in operation. The International Journal of Advanced Manufacturing Technology 109:7-8, pages 1987-1996.
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Smith Salifu, Dawood Desai & Schalk Kok. (2020) Creep–Fatigue Interaction of P91 Steam Piping Subjected to Typical Start-up and Shutdown Cycles. Journal of Failure Analysis and Prevention 20:3, pages 1055-1064.
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Kaustav Barat, S. Sivaprasad, Sujoy Kumar Kar & S. Tarafder. (2020) A novel rate based methodology for creep fatigue life estimation of superalloys. International Journal of Pressure Vessels and Piping 182, pages 104064.
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Huajing Guo, Bin Sun & Zhaoxia Li. (2019) A multi-scale fatigue–creep coupled damage model for steel structures under extreme cyclic loading and temperature. International Journal of Damage Mechanics 29:4, pages 591-609.
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Mesay Alemu Tolcha, Holm Altenbach & Getachew Shunki Tibba. (2020) Modeling creep-fatigue interaction damage and H13 tool steel material response for rolling die under hot milling. Engineering Fracture Mechanics 223, pages 106770.
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Run-Zi Wang, Su-Juan Guo, Haofeng Chen, Jian-Feng Wen, Xian-Cheng Zhang & Shan-Tung Tu. (2019) Multi-axial creep-fatigue life prediction considering history-dependent damage evolution: A new numerical procedure and experimental validation. Journal of the Mechanics and Physics of Solids 131, pages 313-336.
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V.N. Shlyannikov. (2019) Creep–fatigue crack growth rate prediction based on fracture damage zone models. Engineering Fracture Mechanics 214, pages 449-463.
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