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Volume 20 Issue 12
Dec.  2013
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Yao Huang, Ai-min Zhao, Jian-guo He, Xiao-pei Wang, Zhi-gang Wang,  and Liang Qi, Microstructure, crystallography and nucleation mechanism of NANOBAIN steel, Int. J. Miner. Metall. Mater., 20(2013), No. 12, pp. 1155-1163. https://doi.org/10.1007/s12613-013-0849-6
Cite this article as:
Yao Huang, Ai-min Zhao, Jian-guo He, Xiao-pei Wang, Zhi-gang Wang,  and Liang Qi, Microstructure, crystallography and nucleation mechanism of NANOBAIN steel, Int. J. Miner. Metall. Mater., 20(2013), No. 12, pp. 1155-1163. https://doi.org/10.1007/s12613-013-0849-6
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Microstructure, crystallography and nucleation mechanism of NANOBAIN steel

  • 通讯作者:

    Ai-min Zhao    E-mail: aimin.zhao@ustb.edu.cn

  • The microstructure of bainite ferrite in NANOBAIN steel transformed at different temperatures was investigated by scanning electron microscopy, transmission electron microscopy, electron back-scattered diffraction, and vickers hardness tester in detail. It is found that the average width of bainitic ferrite (BF) plates can be refined to be thinner with the reduction of temperature (473–573 K), and the bainitic ferrite plates can reach up to 20–74 nm at 473 K. Crystallographic analysis reveals that the bainitic ferrite laths are close to the Nishiyama-Wasserman orientation relationship with their parent austenite. Temperature shows a significant effect on the variant selection, and a decrease in temperature generally weakens the variant selection. Thermodynamic analyses indicates that the Lacher, Fowler and Guggenheim (LFG) model is more suitable than the Kaufman, Radcliffe and Cohen (KRC) model dealing with NANOBAIN steel at a low temperature range. The free energy change ΔGγ→BF is about −1500 J·mol−1 at 473 K, which indicates that nucleation in NANOBAIN steel is the shear mechanism. Finally, the formation of carbon poor regions is thermodynamically possible, and the existence of carbon poor regions can greatly increase the possibility of the shear mechanism.
  • Microstructure, crystallography and nucleation mechanism of NANOBAIN steel

    + Author Affiliations
    • The microstructure of bainite ferrite in NANOBAIN steel transformed at different temperatures was investigated by scanning electron microscopy, transmission electron microscopy, electron back-scattered diffraction, and vickers hardness tester in detail. It is found that the average width of bainitic ferrite (BF) plates can be refined to be thinner with the reduction of temperature (473–573 K), and the bainitic ferrite plates can reach up to 20–74 nm at 473 K. Crystallographic analysis reveals that the bainitic ferrite laths are close to the Nishiyama-Wasserman orientation relationship with their parent austenite. Temperature shows a significant effect on the variant selection, and a decrease in temperature generally weakens the variant selection. Thermodynamic analyses indicates that the Lacher, Fowler and Guggenheim (LFG) model is more suitable than the Kaufman, Radcliffe and Cohen (KRC) model dealing with NANOBAIN steel at a low temperature range. The free energy change ΔGγ→BF is about −1500 J·mol−1 at 473 K, which indicates that nucleation in NANOBAIN steel is the shear mechanism. Finally, the formation of carbon poor regions is thermodynamically possible, and the existence of carbon poor regions can greatly increase the possibility of the shear mechanism.
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