A probabilistic creep model incorporating test condition, initial damage, and material property uncertainty
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[1] Sayan Gupta,et al. Stochastic Creep Damage Growth Due to Random Thermal Fluctuations Using Continuum Damage Mechanics , 2013 .
[2] Jae-Young Park,et al. Probabilistic assessment of creep crack growth rate for Gr. 91 steel , 2011 .
[3] D. G. Harlow,et al. Creep Deformation and Failure: Effects of Randomness and Scatter , 2000 .
[4] Woo-Gon Kim,et al. Reliability assessment of creep rupture life for Gr. 91 steel , 2013 .
[5] A. Miller. An Inelastic Constitutive Model for Monotonic, Cyclic, and Creep Deformation: Part II—Application to Type 304 Stainless Steel , 1976 .
[6] Kenton R Kaufman,et al. Precision and accuracy of an ankle-worn accelerometer-based pedometer in step counting and energy expenditure. , 2005, Preventive medicine.
[7] D. G. Harlow,et al. A computational probabilistic model for creep-damaging solids , 1995 .
[8] C. Truman,et al. Correlations between creep parameters and application to probabilistic damage assessments , 2018, International Journal of Pressure Vessels and Piping.
[9] A. Drozdov. Creep rupture and viscoelastoplasticity of polypropylene , 2010 .
[10] G. Eggeler,et al. Microstructural parameters for creep damage quantification , 1991 .
[11] B. Ellingwood,et al. Continuum Damage Mechanics-Based Model of Stochastic Damage Growth , 1998 .
[12] Amit K. Ghosh,et al. Cavity formation and early growth in a superplastic Al–Mg alloy , 2002 .
[13] Sankaran Mahadevan,et al. Reliability analysis of creep-fatigue failure , 2000 .
[14] J. D. Lee,et al. On the scatter in creep rupture times , 1990 .
[15] O. Sherby,et al. Calculation of Activation Volumes for Self‐Diffusion and Creep at High Temperature , 1970 .
[16] David R Hayhurst,et al. The effects of test variables on scatter in high-temperature tensile creep-rupture data , 1974 .
[17] M. Evans. A statistical analysis of the failure time distribution for 12Cr12Mo14V steel tubes in the presence of outliers , 1994 .
[18] Convergence Studies on Monte Carlo Methods for Pricing Mortgage-Backed Securities , 2015 .
[19] A. Zouani,et al. Assessment of the stepped isostress method in the prediction of long term creep of thermoplastics , 2014 .
[20] Gour Gopal Roy,et al. X-ray tomography study on porosity in electron beam welded dissimilar copper–304SS joints , 2018 .
[21] Jie Zhao,et al. Introduction of SCRI model for creep rupture life assessment , 2009 .
[22] A. Mehmanparast,et al. Probabilistic assessment of creep-fatigue crack propagation in austenitic stainless steel cracked plates , 2018, Engineering Fracture Mechanics.
[23] T. Gladman,et al. Nucleation and growth of creep cavities in a Type 347 steel , 1980 .
[24] Petri Ekholm,et al. Evaluation of the accuracy and precision of annual phosphorus load estimates from two agricultural basins in Finland , 1991 .
[25] Ramaswamy Viswanathan,et al. Damage Mechanisms and Life Assessment of High Temperature Components , 1989 .
[26] R. Davies,et al. Statistical modeling of creep rupture data , 1999 .
[27] C. Middleton. Reheat cavity nucleation and nucleation control in bainitic creep-resisting low-alloy steels: roles of manganese sulphide, residual, and sulphur-stabilizing elements , 1981 .
[28] E. Garboczi,et al. Porosity Measurements and Analysis for Metal Additive Manufacturing Process Control , 2014, Journal of research of the National Institute of Standards and Technology.
[29] Eckhard Liebscher,et al. Approximation of distributions by using the Anderson Darling statistic , 2016 .
[30] R. K. Penny,et al. Robust methods of life assessment during creep , 1992 .
[31] A. Gordon,et al. Constitutive Modeling of Multistage Creep Damage in Isotropic and Transversely Isotropic Alloys With Elastic Damage , 2012 .
[33] Mohammad Shafinul Haque,et al. The disparate data problem: The calibration of creep laws across test type and stress, temperature, and time scales , 2019, Theoretical and Applied Fracture Mechanics.
[34] C. Stewart,et al. The Stress-Sensitivity, Mesh-Dependence, and Convergence of Continuum Damage Mechanics Models for Creep , 2017 .
[35] A. Takeuchi,et al. Study of creep cavitation behavior in tempered martensitic steel using synchrotron micro-tomography and serial sectioning techniques , 2013 .
[36] C. Stewart. A Hybrid Constitutive Model For Creep, Fatigue, And Creep-fatigue Damage , 2013 .
[37] C. Stewart,et al. Finite-Element Analysis of Waspaloy Using Sinh Creep-Damage Constitutive Model Under Triaxial Stress State , 2016 .
[38] C. Stewart,et al. Modeling the Creep Deformation, Damage, and Rupture of Hastelloy X Using MPC Omega, Theta, and Sin-Hyperbolic Models , 2016 .
[39] R. Viswanathan. Effect of stress and temperature on the creep and rupture behavior of a 1.25 Pct chromium—0.5 Pct molybdenum steel , 1977 .
[40] B. Dyson,et al. A New Method of Predicting Creep Life , 1972 .