Effects of simulated on-fire processing conditions on the microstructure and mechanical performance of Q345R steel

Yi-chao Peng , Hao-hao Xu , Mai-cang Zhang

International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (1) : 49 -56.

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International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (1) : 49 -56. DOI: 10.1007/s12613-016-1210-7
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Effects of simulated on-fire processing conditions on the microstructure and mechanical performance of Q345R steel

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Abstract

A series of simulated on-fire processing experiments on Q345R steel plates was conducted, and the plates’ Brinell hardness, tensile strength, and impact energy were tested. Microstructure morphologies were systematically analyzed using a scanning electron microscope with the aim of investigating the effect of the steel’s microstructure on its performance. All examined performance parameters exhibited a substantial decrease in the cases of samples heat-treated at temperatures near 700°C. However, although the banded structure decreased with increasing treatment temperature and holding time, it had little effect on the performance decline in fact. Further analysis revealed that pearlite degeneration near 700°C, which was induced by the interaction of both subcritical annealing and conventional spherical annealing, was the primary reason for the degradation behavior. Consequently, some nonlinear mathematical models of different mechanical performances were established to facilitate processing adjustments.

Keywords

low alloy steels / heat treatment / mechanical properties / microstructure / nonlinear mathematical models

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Yi-chao Peng, Hao-hao Xu, Mai-cang Zhang. Effects of simulated on-fire processing conditions on the microstructure and mechanical performance of Q345R steel. International Journal of Minerals, Metallurgy, and Materials, 2016, 23(1): 49-56 DOI:10.1007/s12613-016-1210-7

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References

[1]

Guo P.J., Chen X.D., Guan W.H., Cheng H.Y., Jiang H. Effect of tensile stress on the variation of magnetic field of low-alloy steel. J. Magn. Magn. Mater., 2011, 323(20): 2474.

[2]

Yan Y., Liu A.Z., Zhou D.X. Research on mechanical properties of 16MnR steel after high temperature damage. J. Hefei Univ. Technol. Nat. Sci., 2011, 34(6): 827.

[3]

Liu A.Z., Zhang S. Relationships between fatigue mechanical properties and roughness of fatigue fracture about 16MnR steel after high temperature. Adv. Mater. Res., 2013, 602-604, 333.

[4]

Fan Z.C., Jiang J.L. Investigation of low cycle fatigue behavior of 16Mn R steel at elevated temperature. J. Zhejiang Univ. Eng. Sci., 2004, 38(9): 1190.

[5]

Liu S.X., Chen Y., Zhao Z.Y., Xue R.D., Li X.E., Fan J.H. Effect of microalloy element on the grain coarsening behavior of Q345 steel. Foundry Technol., 2006, 27(10): 1071.

[6]

Shanmugam S., Ramisetti N., Misra R.D.K., Mannering T., Panda D., Jansto S. Effect of cooling rate on the microstructure and mechanical properties of Nb-microalloyed steels. Mater. Sci. Eng. A, 2007, 460-461, 335.

[7]

Zhao L. Research and analysis on properties of Q345R vessel steel. Phys. Exam. Test., 2012, 30(1): 5.

[8]

Khalid F.A., Farooque M., ul Haq A., Khan A.Q. Role of ferrite/pearlite banded structure and segregation on mechanical properties of microalloyed hot rolled steel. Mater. Sci. Technol., 1999, 15(10): 1209.

[9]

Karma A., Sarkissian A. Dynamics of banded structure formation in rapid solidification. Phys. Rev. Lett., 1992, 68(17): 2616.

[10]

Verhoeven J.D. A review of microsegregation induced banding phenomena in steels. J. Mater. Eng. Perform., 2000, 9(3): 286.

[11]

Li X.Z., Guo J.J., Su Y.Q., Wu S.P., Fu H.Z. Formation mechanism of band structure and phase selection during directional solidification of peritectic alloys I: formation mechanism of band structure. Acta Metall. Sin., 2005, 41(6): 593.

[12]

Su Y.H., Morooka S., Ohnuma M., Suzuki J., Tomota Y. Quantitative analysis of cementite spheroidization in pearlite by small-angle neutron scattering. Metall. Mater. Trans. A, 2015, 46(4): 1731.

[13]

Zhang G.H., Suh D.W., Wu K.M. Effects of Mn, Si and Cr addition on the spheroidization of cementite in hypereutectoid Fe-1mass%C steel. Mater. Sci. Forum, 2014, 783-786, 1053.

[14]

O’Brien J.M., Hosford W.F. Spheroidization cycles for medium carbon steels. Metall. Mater. Trans., 2002, 33(4): 1255.

[15]

Majka T.F., Matlock D.K., Krauss G. Development of microstructural banding in low-alloy steel with simulated Mn segregation. Metall. Mater. Trans. A, 2002, 33(6): 1627.

[16]

Wang Y.T., Adachi Y., Nakajima K., Sugimoto Y. Quantitative three-dimensional characterization of pearlite spheroidization. Acta Mater., 2010, 58(14): 4849.

[17]

Tian Y.L., Kraft R.W. Mechanisms of pearlite spheroidization. Metall. Trans. A, 1987, 18(8): 1403.

[18]

Wang S.C., Kao P.W. The effect of alloying elements on the structure and mechanical properties of ultra low carbon bainitic steels. J. Mater. Sci., 1993, 28(19): 5169.

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