Modeling the fatigue crack growth of X100 pipeline steel in gaseous hydrogen
暂无分享,去创建一个
Neha Rustagi | Robert L. Amaro | Elizabeth S. Drexler | Andrew J. Slifka | E. Drexler | A. Slifka | K. Findley | N. Rustagi | R. Amaro | Kip O. Findley | Neha Rustagi
[1] K. Sieradzki,et al. A surface chemistry kinetic model of gaseous hydrogen embrittlement , 1982 .
[2] P. Sofronis,et al. MICROSTRUCTURE AND MECHANICAL PROPERTY PERFORMANCE OF COMMERCIAL GRADE API PIPELINE STEELS IN HIGH PRESSURE GASEOUS HYDROGEN , 2010 .
[3] Robert P. Wei,et al. Corrosion fatigue crack growth of steels in aqueous solutions I: Experimental results and modeling the effects of frequency and temperature , 1992 .
[4] L. Remy,et al. Fatigue oxidation interaction in a superalloy—application to life prediction in high temperature low cycle fatigue , 1983 .
[5] William D'haeseleer,et al. The use of the natural-gas pipeline infrastructure for hydrogen transport in a changing market structure , 2007 .
[6] H. Maier,et al. Modeling thermomechanical fatigue life of high-temperature titanium alloy IMI 834 , 2000 .
[7] R. P. Wei,et al. Correlation between sustained-load and fatigue crack growth in high-strength steels , 1969 .
[8] A. Plumtree,et al. Fatigue-creep-environmental interaction: a kinetic approach , 1991 .
[9] H. Cialone,et al. Sensitivity of Steels to Degradation in Gaseous Hydrogen , 1988 .
[10] H. Nelson. Hydrogen-induced slow crack growth of a plain carbon pipeline steel under conditions of cyclic loading , 1976 .
[11] E. Affeldt,et al. HIGH TEMPERATURE FATIGUE IN SINGLE CRYSTAL SUPERALLOYS , 1997 .
[12] P. Ficalora,et al. A WORK FUNCTION-CHEMISORPTION STUDY OF HYDROGEN ON IRON: KINETICS AND STRAIN EFFECTS , 1983 .
[13] J. Gilgert,et al. Sensitivity of pipelines with steel API X52 to hydrogen embrittlement , 2008 .
[14] H. Cialone,et al. Effects of gaseous hydrogen on fatigue crack growth in pipeline steel , 1985 .
[15] L. Raymond. Hydrogen embrittlement : prevention and control , 1988 .
[16] Ming Gao,et al. Reconsideration of the superposition model for environmentally assisted fatigue crack growth , 1983 .
[17] Robert P. Wei,et al. Gaseous hydrogen embrittlement of high strength steels , 1977 .
[18] S. Dean. Review of recent studies on the mechanism of stress-corrosion cracking in austenitic stainless steels , 1976 .
[19] D. Symons. A comparison of internal hydrogen embrittlement and hydrogen environment embrittlement of X-750 , 2001 .
[20] E. Drexler,et al. Fatigue crack growth rates of API X70 pipeline steel in a pressurized hydrogen gas environment , 2014 .
[21] H. Nelson,et al. Embrittlement of 4130 steel by low-pressure gaseous hydrogen , 1970, Metallurgical and Materials Transactions B.
[22] T. Shih,et al. A Model for Representing and Predicting the Influence of Hold Time on Fatigue Crack Growth Behavior at Elevated Temperature , 1981 .
[23] C. S. Marchi,et al. Fracture Resistance and Fatigue Crack Growth of X80 Pipeline Steel in Gaseous Hydrogen , 2011 .
[24] Hans Jürgen Maier,et al. Using Fracture Mechanics Concepts for a Mechanism-Based Prediction of Thermomechanical Fatigue Life , 2003 .
[25] Luc Rémy,et al. An oxidation fatigue interaction damage model for thermal fatigue crack growth , 1989 .
[26] J. E. Stein,et al. Gas-phase hydrogen permeation through alpha iron, 4130 steel, and 304 stainless steel from less than 100 C to near 600 C , 1973 .
[27] Robert P. Wei,et al. Environmentally Assisted Crack Growth in Structural Alloys: Perspectives and New Directions , 1987 .
[28] L. Fournier,et al. Cathodic hydrogen embrittlement in alloy 718 , 1999 .
[29] R. J. Walter,et al. Cyclic-load crack growth in ASME SA-105 grade II steel in high-pressure hydrogen at ambient temperature , 1976 .
[30] L. Qiao,et al. Study of correlation between hydrogen-induced stress and hydrogen embrittlement , 2003 .
[31] J. Hirth,et al. Effects of hydrogen on the properties of iron and steel , 1980 .
[32] W. Gerberich,et al. The kinetics and micromechanics of hydrogen assisted cracking in Fe-3 pct Si single crystals , 1991 .
[33] S. Mao,et al. Mechanics and thermodynamics on the stress and hydrogen interaction in crack tip stress corrosion: experiment and theory , 1998 .
[34] John W. Hutchinson,et al. Singular behaviour at the end of a tensile crack in a hardening material , 1968 .
[35] Kee Bong Yoon,et al. Elevated temperature fatigue crack growth model for DS-GTD-111 , 2013 .
[36] R. Wei,et al. Corrosion fatigue crack growth of steels in aqueous solutions II: Modeling the effects of ΔK , 1992 .
[37] Brian P. Somerday,et al. A statistical, physical-based, micro-mechanical model of hydrogen-induced intergranular fracture in steel , 2010 .
[38] R. A. Oriani,et al. Equilibrium and kinetic studies of the hydrogen-assisted cracking of steel , 1977 .
[39] Ali Fatemi,et al. Cumulative fatigue damage and life prediction theories: a survey of the state of the art for homogeneous materials , 1998 .
[40] Jing-Li Luo,et al. Effects of dissolved hydrogen and elastic and plastic deformation on active dissolution of pipeline steel in anaerobic groundwater of near-neutral pH , 2009 .
[41] Ming Gao,et al. Environmental enhancement of creep crack growth in Inconel 718 by oxygen and water vapor , 1994 .
[42] R. Ritchie,et al. Mechanistic dissimilarities between environmentally influenced fatigue-crack propagation at near-threshold and higher growth rates in lower strength steels , 1982 .
[43] H. Vehoff,et al. Gaseous hydrogen embrittlement in FeSi- and Ni-single crystals , 1983 .
[44] I. M. Austen,et al. Corrosion fatigue of high-strength steel in low-pressure hydrogen gas , 1979 .
[45] Huseyin Sehitoglu,et al. Thermomechanical fatigue, oxidation, and Creep: Part II. Life prediction , 1989 .
[46] C. S. Marchi,et al. Fracture and Fatigue of Commercial Grade API Pipeline Steels in Gaseous Hydrogen , 2010 .
[47] R. J. Walter,et al. Influence of gaseous hydrogen on metals , 1971 .
[48] Donald L. Johnson,et al. Gas-phase hydrogen permeation and diffusion in carbon steels as a function of carbon content from 500 to 900 K , 1979 .
[49] H. Nelson,et al. Influence of Microstructure on the Fatigue Crack Growth of A516 in Hydrogen , 1980 .
[50] R. A. Oriani,et al. Equilibrium aspects of hydrogen-induced cracking of steels , 1974 .
[51] J. Rice,et al. Plane strain deformation near a crack tip in a power-law hardening material , 1967 .
[52] David L. McDowell,et al. A Creep-Fatigue-Oxidation Microcrack Propagation Model for Thermomechanical Fatigue , 1992 .
[53] H. W. Liu,et al. Grain boundary oxidation and fatigue crack growth at elevated temperatures. Final report , 1986 .
[54] D. W. Maclachlan,et al. Fatigue behaviour and lifing of two single crystal superalloys , 2001 .
[55] A. Tetelman,et al. Embrittlement of a ferrous alloy in a partially dissociated hydrogen environment , 1971 .
[56] Shoichi Matsuda,et al. Absorption of Gases by Metals , 1949 .
[57] R. A. Oriani. Discussion of “Embrittlement of 4130 steel by low-pressur gaseous hydrogen” , 1970 .
[58] E. Drexler,et al. Comparison of hydrogen embrittlement in three pipeline steels in high pressure gaseous hydrogen environments , 2012 .
[59] W. Hoover,et al. Hydrogen compatibility of structural materials for energy storage and transmission. Final report , 1976 .