Sulphide stress cracking behaviour of the coarse-grained heat-affected zone in X100 pipeline steel under different heat inputs
暂无分享,去创建一个
[1] M. A. Mohtadi-Bonab,et al. Important Factors on the Failure of Pipeline Steels with Focus on Hydrogen Induced Cracks and Improvement of Their Resistance: Review Paper , 2019, Metals and Materials International.
[2] Dawei Zhang,et al. Electrochemical corrosion, hydrogen permeation and stress corrosion cracking behavior of E690 steel in thiosulfate-containing artificial seawater , 2018, Corrosion Science.
[3] M. A. Mohtadi-Bonab,et al. Role of cold rolled followed by annealing on improvement of hydrogen induced cracking resistance in pipeline steel , 2018, Engineering Failure Analysis.
[4] R. Johnsen,et al. Effect of nickel on hydrogen permeation in ferritic/ pearlitic low alloy steels , 2018 .
[5] H. Jing,et al. Transient creep behavior of a novel tempered martensite ferritic steel G115 , 2018 .
[6] M. A. Mohtadi-Bonab,et al. Effect of different microstructural parameters on hydrogen induced cracking in an API X70 pipeline steel , 2017, Metals and Materials International.
[7] S. Matsuoka,et al. Material performance of age-hardened beryllium–copper alloy, CDA-C17200, in a high-pressure, gaseous hydrogen environment , 2017 .
[8] Jinyang Zheng,et al. Hydrogen-enhanced fatigue life analysis of Cr–Mo steel high-pressure vessels , 2017 .
[9] Chengshuang Zhou,et al. Hydrogen effects on X80 pipeline steel in high-pressure natural gas/hydrogen mixtures , 2017 .
[10] E. Proverbio,et al. Monitoring of 13% Cr martensitic stainless steel corrosion in chloride solution in presence of thiosulphate by acoustic emission technique , 2016 .
[11] Yong Wang,et al. Hydrogen permeation and embrittlement susceptibility of X80 welded joint under high-pressure coal gas environment , 2016 .
[12] J. Narayan,et al. Mechanical properties of copper/bronze laminates: Role of interfaces , 2016 .
[13] K. Matsuda,et al. Corrosion behavior of reheated CGHAZ of X80 pipeline steel in H2S-containing environments , 2016 .
[14] Jianxun Zhang,et al. Effect of coiling temperature on microstructure and properties of X100 pipeline steel , 2016 .
[15] T. Jia,et al. Microstructure and toughness of the CGHAZ of an offshore platform steel , 2015 .
[16] H Zhao,et al. Initiation and developmental stages of steel corrosion in wet H2S environments , 2015 .
[17] J. Gomes,et al. Effect of cathodic potential on hydrogen permeation of API grade steels in modified NS4 solution , 2014 .
[18] L. Du,et al. Microstructure of Nb‐Bearing Pipeline Steel with Improved Property Applying Ultrafast Cooling Process , 2014 .
[19] T. Chauveau,et al. Texture, misorientation and mechanical anisotropy in a deformed dual phase stainless steel weld joint , 2013 .
[20] A. Alfantazi,et al. Corrosion of simulated weld HAZ of API X-80 pipeline steel , 2012 .
[21] E. Drexler,et al. Comparison of hydrogen embrittlement in three pipeline steels in high pressure gaseous hydrogen environments , 2012 .
[22] H. Jing,et al. Welding heat input effect on the hydrogen permeation in the X80 steel welded joints , 2012 .
[23] J. H. Espina-Hernandez,et al. On the role of crystallographic texture in mitigating hydrogen-induced cracking in pipeline steels , 2011 .
[24] K. Minoshima,et al. Fatigue crack growth acceleration caused by irreversible hydrogen desorption in high-strength steel and its mechanical condition , 2011 .
[25] M. Kappes. Evaluation of thiosulfate as a substitute for hydrogen sulfide in sour corrosion fatigue studies , 2011 .
[26] J. Szpunar,et al. Effect of bainitic microstructure on the susceptibility of pipeline steels to hydrogen induced cracking , 2011 .
[27] B. Han,et al. Microstructure and toughness of coarse grain heat-affected zone of domestic X70 pipeline steel during in-service welding , 2011 .
[28] Xiaogang Li,et al. Effect of microstructure and inclusions on hydrogen induced cracking susceptibility and hydrogen trapping efficiency of X120 pipeline steel , 2010 .
[29] M. Balogh,et al. Hydrogen environment embrittlement of an ODS RAF steel – Role of irreversible hydrogen trap sites , 2010 .
[30] A. M. Alfantazi,et al. Sulfide stress cracking resistance of API-X100 high strength low alloy steel , 2009 .
[31] Y. F. Cheng,et al. Effects of hydrogen-charging on the susceptibility of X100 pipeline steel to hydrogen-induced cracking , 2009 .
[32] Behrooz Beidokhti,et al. Effects of alloying elements and microstructure on the susceptibility of the welded HSLA steel to hydrogen-induced cracking and sulfide stress cracking , 2009 .
[33] D. Bae,et al. Assessment of the sulfide stress corrosion cracking characteristics in the multi-pass weld of the A106 Gr B steel pipe , 2009 .
[34] B. Campillo,et al. Effect of microstructure on the sulphide stress cracking susceptibility of a high strength pipeline steel , 2008 .
[35] KyooYoung Kim,et al. Effect of environmental and metallurgical factors on hydrogen induced cracking of HSLA steels , 2008 .
[36] Cuiwei Du,et al. Stress corrosion cracking behavior of X70 pipe steel in an acidic soil environment , 2008 .
[37] Mao-qiu Wang,et al. Effect of microstructural refinement on the toughness of low carbon martensitic steel , 2008 .
[38] Y. F. Cheng. Analysis of electrochemical hydrogen permeation through X-65 pipeline steel and its implications on pipeline stress corrosion cracking , 2007 .
[39] L. Tsay,et al. Hydrogen embrittlement susceptibility and permeability of two ultra-high strength steels , 2006 .
[40] KyooYoung Kim,et al. Effect of Line Pipe Steel Microstructure on Susceptibility to Sulfide Stress Cracking , 2004 .
[41] Mingchun Zhao,et al. Role of microstructure on sulfide stress cracking of oil and gas pipeline steels , 2003 .
[42] C. Ouchi,et al. Development of Steel Plates by Intensive Use of TMCP and Direct Quenching Processes , 2001 .
[43] H. Lopez,et al. Effect of heat treatment on the stress corrosion resistance of a microalloyed pipeline steel , 1999 .
[44] W. Tsai,et al. Electrochemical behavior of the simulated heat-affected zone of A516 carbon steel in H2S solution , 1996 .
[45] Shigeo Tsujikawa,et al. Alternative for evaluating sour gas resistance of low-alloy steels and corrosion-resistant alloys , 1993 .
[46] T. Hemmingsen. The electrochemical reaction of sulphur—oxygen compounds—part I. A review of literature on the electrochemical properties of sulphur/sulphur—oxygen compounds , 1992 .
[47] D. Kwon,et al. Correlation of microstructure and fracture properties in weld heat- affected zones of thermomechanically controlled processed steels , 1992 .
[48] R. Gibala,et al. Hydrogen embrittlement and stress corrosion cracking , 1985 .
[49] S. Hudak,et al. The effect of impurities and strength level on hydrogen induced cracking in a low alloy turbine steel , 1977 .
[50] C. D. Beachem,et al. A new model for hydrogen-assisted cracking (hydrogen “embrittlement”) , 1972 .