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The influence of Nb on microstructure, mechanical property and the transformation kinetics of the coarse grain heat affected zone (CGHAZ) in HSLA steels for different heat inputs, has been investigated. When welded at higher heat inputs (100-60 kJ/cm), impact toughness values of the steel without Nb are much higher than those of the steel with Nb, and the lowest span is 153 J at 60 kJ/cm. But only a little higher values are observed at lower heat inputs (40-30 kJ/cm), and the highest span is 68 J at 30 kJ/cm. Dilatation studies indicate that continuous cooling transformation starting temperatures (Ts) of CGHAZ for the steel with Nb are approximately 15-30 ℃ which are lower than those of the steel without Nb at all heat inputs. For higher heat inputs, Nb in solid solution suppresses ferrite transformation and promotes the formation of granular bainite which has detrimental effect on impact tough-ness. For lower heat inputs higher Charpy impact energy values in the steel with Nb are associated with the formation of low carbon self-tempered martensite.

参考文献

[1] Y.LI;D.N.CROWTHER;M.J.W.GREEN .The Effect of Vanadium and Niobium on the Properties and Microstructure of the Intercritically Reheated Coarse Grained Heat Affected Zone in Low Carbon Microalloyed Steels[J].ISIJ International,2001(1):46-55.
[2] Roelof J. Hattingh;Gert Pienaar .Weld HAZ embrittlement of Nb containing C-Mn steels[J].International Journal of Pressure Vessels and Piping,1998(9):661-677.
[3] S. Shanmugam;R.D.K. Misra;T. Mannering .Impact toughness and microstructure relationship in niobium- and vanadium-microalloyed steels processed with varied cooling rates to similar yield strength[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2006(2):436-445.
[4] Shome M;Gupta O P;Mohanty O N .Effect of Simulated Thermal Cycles on the Microstructure of the Heat-Affected Zone in HSLA-80 and HSLA-100 l-[J].Metallurgical and Materials Transactions,2004,35A:985.
[5] M. HAMADA;Y. FUKADA;Y. KOMIZO .Microstructure and precipitation behavior in heat affected zone of C-Mn microalloyed steel containing Nb, V and Ti[J].ISIJ International,1995(10):1196-1202.
[6] Jung-Soo Byun;Jae-Hyeok Shim;Young Whan Cho .Influence of Mn on microstructural evolution in Ti-killed C-Mn steel[J].Scripta materialia,2003(4):449-454.
[7] Andrews K W .Empirical Formulae for the Calculation of Some Transformation Temperatures[J].Journal of the Iron and Steel Institute,1965,203(07):721.
[8] Bhadeshia H K D H .Diffusional Formation of Ferrite in Iron and Its Alloys[J].Progress in Materials Science,1985,29(04):321.
[9] Bhadeshia H K D H.Bainite in steels[M].London:Institute of Materials,2001
[10] Lee S;Kim B C;Kwon D .Correlation of Microstructure and Fracture Properties in Weld Heat-Affected Zones of Thermomechanically Controlled Processed Steels[J].Metallurgical and Materials Transactions,1992,23A(10):2803.
[11] Irvine K J;Pickering F B;Gladman T .Grain Refined C-Mn Steels[J].Journal of the Iron and Steel Institute,1967,205(02):161.
[12] M. SHOME;D. S. SARMA;O. P. GUPTA;O. N. MOHANTY .Precipitate Dissolution and Grain Growth in the Heat Affected Zone of HSLA-100 Steel[J].ISIJ International,2003(9):1431-1437.
[13] Palmiere E J;Garcia C I;Deardo A J .Compositional and Microatruetural Changes Which Attend Reheating and Grain Coarsening in Steels Containing Niobium[J].Metallurgical Transactions,1994,25A(02):277.
[14] P. A. MANOHAR;D. P. DUNNE;T. CHANDRA;C. R. KILLMORE .Grain Growth Predictions in Microalloyed Steels[J].ISIJ International,1996(2):194-200.
[15] Davis C L;King J E .Cleavage Initiation in the Intercritically Reheated Coarse-Grained Heat-Affected Zones Part Ⅰ.Fractographic Evidence[J].Metallurgical and Materials Transactions,1994,25A(03):563.
[16] Emin Bayraktar;Damien Hugele;J.P. Jansen .Evaluation of pipeline laser girth weld properties by Charpy (V) toughness and impact tensile tests[J].Journal of Materials Processing Technology,2004(2):155-162.
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