A Significant Toughness Enhancement, And Microstructural Evolution Of An Electric Resistance Welded (ERW) Microalloyed Steel
暂无分享,去创建一个
[1] Liu Chenxi,et al. Annealing Process Optimization of High Frequency Longitudinal Resistance Welded Low-CarbonFerritic Stainless Steel Pipe , 2019 .
[2] H. Henein,et al. Characterization of martensite-austenite constituents and micro-hardness in intercritical reheated and coarse-grained heat affected zones of API X70 HSLA steel , 2018, Materials Characterization.
[3] Huijun Li,et al. Formation mechanism and control methods of acicular ferrite in HSLA steels: A review , 2017 .
[4] Huijun Li,et al. Effect of alloy design on improving toughness for X70 steel during welding , 2015 .
[5] J. Lewandowski,et al. Flex bending fatigue testing of wires, foils, and ribbons , 2014 .
[6] S. Yue,et al. The Effect of Cooling Rate, and Cool Deformation Through Strain-Induced Transformation, on Microstructural Evolution and Mechanical Properties of Microalloyed Steels , 2012, Metallurgical and Materials Transactions A.
[7] Changhee Lee,et al. Effects of post-weld heat treatment cycles on microstructure and mechanical properties of electric resistance welded pipe welds , 2012 .
[8] D. Sediako,et al. Optimization of flow stress in cool deformed Nb-microalloyed steel by combining strain induced transformation of retained austenite, cooling rate and heat treatment , 2012 .
[9] Philippe Thibaux,et al. Tackling the toughness of steel pipes produced by high frequency induction welding and heat-treatment , 2011 .
[10] S. Yue,et al. Texture development in cool deformed microalloyed steels , 2011 .
[11] S. Yue,et al. The necessity of dynamic precipitation for the occurrence of no-recrystallization temperature in Nb-microalloyed steel , 2011 .
[12] T. N. Baker,et al. Effect of morphology of martensite–austenite phase on fracture of weld heat affected zone in vanadium and niobium microalloyed steels , 2010 .
[13] H. Bhadeshia,et al. Induction welding and heat treatment of steel pipes: evolution of crystallographic texture detrimental to toughness , 2010 .
[14] Philippe Thibaux,et al. Crystallographic Texture of Induction-Welded and Heat-Treated Pipeline Steel , 2010 .
[15] Sangho Kim,et al. Fracture-Toughness Analysis in Transition-Temperature Region of Three American Petroleum Institute X70 and X80 Pipeline Steels , 2009 .
[16] Xie Changsheng,et al. Influence of Mo content on microstructure and mechanical properties of high strength pipeline steel , 2004 .
[17] S. K. Kim,et al. Effect of microstructure on the yield ratio and low temperature toughness of linepipe steels , 2002 .
[18] Takao Araki,et al. Micro-fracture behaviour induced by M-A constituent (Island Martensite) in simulated welding heat affected zone of HT80 high strength low alloyed steel , 1984 .
[19] W. Tyson,et al. Anisotropy of cleavage in B.C.C. transition metals , 1973 .
[20] Andrej Atrens,et al. Microstructure of X52 and X65 pipeline steels , 1999 .
[21] Julia King,et al. Effect of cooling rate on intercritically reheated microstructure and toughness in high strength low alloy steel , 1993 .
[22] N. Mizuhashi,et al. An Automatic Power Input Control System in High Frequency Electric Resistance Welding , 1986 .
[23] Tetsuo Kyogoku,et al. Automatic Welding Control System for Electric-resistance Weld Tube Mill , 1984 .