Nonlinear fatigue damage accumulation and life prediction of metals: A comparative study
暂无分享,去创建一个
Grzegorz Lesiuk | Shun‐Peng Zhu | G. Lesiuk | A. Jesus | Yong-Zhen Hao | Shun‐Peng Zhu | Yong‐Zhen Hao | José A.F. Oliveira Correia | Abílio M.P. Jesus | Shun‐Peng Zhu
[1] Shun-Peng Zhu,et al. Strain energy-based multiaxial fatigue life prediction under normal/shear stress interaction , 2018, International Journal of Damage Mechanics.
[2] Nikolaos D. Batsoulas,et al. Cumulative Fatigue Damage: CDM‐Based Engineering Rule and Life Prediction Aspect , 2016 .
[3] Abílio M. P. De Jesus,et al. Fatigue Damage Behavior of a Structural Component Made of P355NL1 Steel Under Block Loading , 2009 .
[4] Hiroshi Noguchi,et al. On the cumulative fatigue damage in short carbon fiber reinforced poly-ether-ether-ketone , 1995 .
[5] Shun-Peng Zhu,et al. Evaluation and comparison of critical plane criteria for multiaxial fatigue analysis of ductile and brittle materials , 2018, International Journal of Fatigue.
[6] Jaap Schijve,et al. Fatigue of Structures and Materials in the 20th Century and the State of the Art , 2003 .
[7] Ayhan Ince,et al. A modification of Morrow and Smith–Watson–Topper mean stress correction models , 2011 .
[8] Abdelwaheb Amrouche,et al. Sequential law in multiaxial fatigue, a new damage indicator , 2005 .
[9] Abílio M. P. De Jesus,et al. Strain energy-based fatigue life prediction under variable amplitude loadings , 2018 .
[10] G. Xiao,et al. Erratum to “Characterization of Human Colorectal Cancer MDR1/P-gp Fab Antibody” , 2014, The Scientific World Journal.
[11] Weiqi Du,et al. A mean plastic strain fatigue–creep life prediction and reliability analysis of AISI H13 based on energy method , 2017 .
[12] N. Rahbar,et al. An equivalent driving force model for crack growth prediction under different stress ratios , 2011 .
[13] Hong-Zhong Huang,et al. A Modified Nonlinear Damage Accumulation Model for Fatigue Life Prediction Considering Load Interaction Effects , 2014, TheScientificWorldJournal.
[14] Shun-Peng Zhu,et al. A modified strain energy density exhaustion model for creep–fatigue life prediction , 2016 .
[15] Shun-Peng Zhu,et al. Fatigue reliability assessment of turbine discs under multi‐source uncertainties , 2018 .
[16] Shun-Peng Zhu,et al. Strain energy gradient-based LCF life prediction of turbine discs using critical distance concept , 2018, International Journal of Fatigue.
[17] V. F. González-Albuixech,et al. On the temperature independence of statistical model parameters for cleavage fracture in ferritic steels , 2018 .
[18] Rui Calçada,et al. Computational framework for multiaxial fatigue life prediction of compressor discs considering notch effects , 2018, Engineering Fracture Mechanics.
[19] Robert L. Lytton,et al. Energy-based mechanistic approach for damage characterization of pre-flawed visco-elasto-plastic materials , 2014 .
[20] Hong-Zhong Huang,et al. A new approach to the investigation of load interaction effects and its application in residual fatigue life prediction , 2016 .
[21] Khaled Galal,et al. A fatigue stress-life damage accumulation model for variable amplitude fatigue loading based on virtual target life , 2013 .
[22] Abílio M. P. De Jesus,et al. Cyclic and Fatigue Behavior of the P355NL1 Steel Under Block Loading , 2009 .
[23] G. R. Halford,et al. Practical implementation of the double linear damage rule and damage curve approach for treating cumulative fatigue damage , 1981 .
[24] Dianyin Hu,et al. A non-local approach for probabilistic assessment of LCF life based on optimized effective-damage-parameter , 2018, Engineering Fracture Mechanics.
[25] Hong-Zhong Huang,et al. Fatigue Life Estimation Considering Damaging and Strengthening of Low amplitude Loads under Different Load Sequences Using Fuzzy Sets Approach , 2011 .
[26] Michael M. Khonsari,et al. An experimental approach to estimate damage and remaining life of metals under uniaxial fatigue loading , 2014 .
[27] Ali Fatemi,et al. Cumulative fatigue damage and life prediction theories: a survey of the state of the art for homogeneous materials , 1998 .
[28] Shan-Tung Tu,et al. High temperature fatigue and creep-fatigue behaviors in a Ni-based superalloy: Damage mechanisms and life assessment , 2019, International Journal of Fatigue.
[29] Dimitrios G. Pavlou,et al. A one-parameter nonlinear fatigue damage accumulation model , 2017 .
[30] Hong-Zhong Huang,et al. A modified nonlinear fatigue damage accumulation model , 2015 .
[31] Shun-Peng Zhu,et al. Critical plane–based multiaxial fatigue life prediction of turbine disk alloys by refining normal stress sensitivity , 2018, The Journal of Strain Analysis for Engineering Design.
[32] Wang Zhen-lin,et al. A new approach to low-cycle fatigue damage based on exhaustion of static toughness and dissipation of cyclic plastic strain energy during fatigue , 2001 .
[33] Norbert Theil,et al. Fatigue life prediction method for the practical engineering use taking in account the effect of the overload blocks , 2016 .
[34] Guozheng Kang,et al. On the fatigue performance and residual life of intercity railway axles with inside axle boxes , 2018, Engineering Fracture Mechanics.
[35] Weiwen Peng,et al. Computational-experimental approaches for fatigue reliability assessment of turbine bladed disks , 2018, International Journal of Mechanical Sciences.
[36] Dimitrios G. Pavlou,et al. A phenomenological fatigue damage accumulation rule based on hardness increasing, for the 2024-T42 aluminum , 2002 .
[37] Guian Qian,et al. Comparison of constraint analyses with global and local approaches under uniaxial and biaxial loadings , 2018 .
[38] Pedro M.G.P. Moreira,et al. A generalization of the fatigue Kohout-Věchet model for several fatigue damage parameters , 2017 .
[39] Weiwen Peng,et al. Reliability modelling and assessment of a heterogeneously repaired system with partially relevant recurrence data , 2018, Applied Mathematical Modelling.
[40] A. Aid,et al. Fatigue life prediction under variable loading based on a new damage model , 2011 .
[41] Abílio M. P. De Jesus,et al. Low and High Cycle Fatigue and Cyclic Elasto-Plastic Behavior of the P355NL1 Steel , 2006 .
[42] E. W. C. Wilkins,et al. Cumulative damage in fatigue , 1956 .
[43] Hong-Zhong Huang,et al. Fatigue life prediction under variable amplitude loading using a non-linear damage accumulation model , 2015 .
[44] J. C. Freche,et al. Application of a double linear damage rule to cumulative fatigue , 1967 .
[45] Yu Zhang,et al. Structural reliability analysis and uncertainties‐based collaborative design and optimization of turbine blades using surrogate model , 2018, Fatigue & Fracture of Engineering Materials & Structures.