Toughening mechanisms of a high-strength acicular ferrite steel heavy plate

Zhi-qiang Cao , Yan-ping Bao , Zheng-hai Xia , Deng Luo , Ai-min Guo , Kai-ming Wu

International Journal of Minerals, Metallurgy, and Materials ›› 2010, Vol. 17 ›› Issue (5) : 567 -572.

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International Journal of Minerals, Metallurgy, and Materials ›› 2010, Vol. 17 ›› Issue (5) : 567 -572. DOI: 10.1007/s12613-010-0358-9
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Toughening mechanisms of a high-strength acicular ferrite steel heavy plate

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Abstract

An ultra-low carbon acicular ferrite steel heavy plate was obtained with an advanced thermo-mechanical control process-relaxed precipitation controlled transformation (TMCP-RPC) at Xiangtan Steel, Valin Group. The heavy plate has a tensile strength of approximately 600 MPa with a lower yield ratio. The impact toughness of the heavy plate achieves 280 J at −40°C. The fine-grained mixed microstructures of the heavy plate mainly consist of acicular ferrite, granular bainite, and polygonal ferrite. The high strength and excellent toughness of the heavy plate are attributed to the formation of acicular ferrite microstructure. The prevention of blocks of martensite/retained austenite (M/A) and the higher cleanness are also responsible for the superior toughness.

Keywords

high-strength / steel / microstructure / mechanical properties / acicular ferrite

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Zhi-qiang Cao, Yan-ping Bao, Zheng-hai Xia, Deng Luo, Ai-min Guo, Kai-ming Wu. Toughening mechanisms of a high-strength acicular ferrite steel heavy plate. International Journal of Minerals, Metallurgy, and Materials, 2010, 17(5): 567-572 DOI:10.1007/s12613-010-0358-9

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References

[1]

Hwang B., Kim Y.G., Lee S., et al. Effective grain size and Charpy impact properties of high-toughness X70 pipeline steels. Metall. Mater. Trans. A, 2005, 36, 2107.

[2]

Xiao F.R., Liao B., Shan Y.Y., et al. Challenge of mechanical properties of acicular ferrite pipeline steel. Mater. Sci. Eng. A, 2006, 431, 41.

[3]

Shin S.Y., Hwang B., Kim S., Lee S. Fracture toughness analysis in transition temperature region of API X70 pipeline steels. Mater. Sci. Eng. A, 2006, 429, 196.

[4]

Funakoshi T., Tanaka T., Ueda S., et al. Improvement in microstructure and toughness of large heat-input weld bond of high strength steel due to addition of rare earth metals and boron. Trans. Iron Steel Inst. Jpn., 1977, 17, 419.

[5]

Kanzawa S., Nakajima A., Okamoto K., et al. Improved toughness of weld fusion zone by fine TiN particles and development of a steel for large heat input welding. Tetsu-to-Hagané, 1975, 61, 2589.

[6]

Tomita Y., Saito N., Tsuzui T., et al. Improvement in HAZ toughness of steel by TiN-MnS addition. ISIJ Int., 1994, 34, 829.

[7]

Enomoto M. Nucleation of phase transformations at intragranular inclusions in steel. Met. Mater. Int., 1998, 4, 115.

[8]

Wu K.M., Inagawa Y., Enomoto M. Three-dimensional morphology of ferrite formed in association with inclusions in low-carbon steel. Mater. Charact., 2004, 52, 121.

[9]

Miki C., Homma K., Tominaga T. High strength and high performance steels and their use in bridge structures. J. Constr. Steel Res., 2002, 58, 3.

[10]

Lis A.K., Lis L., Jeziorski L. Advanced ultra-low carbon bainitic steels with high toughness. J. Mater. Process. Technol., 1997, 64, 255.

[11]

Ghosh A., Chatterjee S. Characterization of precipitates in an ultra-low carbon Cu bearing high strength steel: A TEM study. Mater. Charact., 2005, 55, 298.

[12]

Lis A.K. Mechanical properties and microstructure of ULCB steels affected by thermomechanical processing. J. Mater. Process. Technol., 2000, 106, 212.

[13]

Guo A.M., Song X.L., Tang J.Q., Yuan Z.X. Effect of tempering temperature on the mechanical properties and microstructure of an copper-bearing low carbon bainitic steel. J. Univ. Sci. Technol. Beijing, 2008, 15, 38.

[14]

Maki T. Current state and future prospect of microstructure control in steels. Tetsu-to-Hagané, 1995, 81, N547.

[15]

Wang X.M., He X.L., Yang S.W., et al. Refining of intermediate transformation microstructure by relaxation processing. ISIJ Int., 2002, 42, 1553.

[16]

Wu K.M., Li Z.G., Guo A.M., et al. Microstructure evolution in a low carbon Nb-Ti microalloyed steel. ISIJ Int., 2006, 46, 161.

[17]

Bhadeshia H.K.D.H. Bainite in Steels, 2001 London, The Institute of Materials, 237.

[18]

Wu K.M., Yokomizo T., Enomoto M. Three-dimensional morphology and growth kinetics of intragranular ferrite idiomorphs formed in association with inclusions in an Fe-C-Mn alloy. ISIJ Int., 2002, 42, 1144.

[19]

Wu K.M. Three-dimensional analysis of acicular ferrite in a low-carbon steel containing titanium. Scripta Mater., 2006, 54, 569.

[20]

Enomoto M., Wu K.M., Inagawa Y., et al. Three-dimensional observation of ferrite plate in low carbon steel weld. ISIJ Int., 2005, 45, 756.

[21]

Wan X.L., Wei R., Wu K.M. Effect of acicular ferrite formation on grain refinement in the coarse-grained region of the heat-affected zone. Mater. Charact., 2010, 61, 726.

[22]

Cheng L., Wu K.M. New insights into intragranular ferrite in a low-carbon low-alloy steel. Acta Mater., 2009, 57, 3754.

[23]

Bhadeshia H.K.D.H., Honeycombe R.W.K. Steels Microstructures and Properties, 2006 3rd Ed. Oxford, Elsevier Ltd., 152.

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