Microstructure analysis and mechanical properties of low alloyed steel with retained austenite obtained by heat treatment

被引:0
作者
Kučerová L. [1 ]
Jandová A. [1 ]
Rubešová K. [1 ]
机构
[1] Regional Technological Institute, University of West Bohemia in Pilsen, Univerzitní 8, Plzeň
来源
Manufacturing Technology | 2019年 / 19卷 / 02期
关键词
Aluminium; Heat treatment; Retained austenite; TRIP steel;
D O I
10.21062/ujep/277.2019/a/1213-2489/mt/19/2/243
中图分类号
学科分类号
摘要
Four different heating temperatures in the range of 770 °C - 950 °C were used for laboratory heat treatment of low carbon low alloyed steel. Chemical composition of the steel was based on the most common TRIP steel concept, only the silicon content was lowered to 0.6% and it was partially replaced by 1.4 % of aluminium. The steel was further micro-alloyed by niobium. Two different ways of cooling were applied to the samples. The first set was cooled to 425 °C in a salt bath with the temperature of 200 °C, the second set was cooled to 425 °C in a salt bath heated to the temperature of 400 °C. In this way, two distinctive cooling rates were achieved for every soaking temperature. Once the samples reached 4250 °C, they were in all cases removed to the furnace for 20 minute hold at the temperature of 425 °C. The final cooling was carried out in air. Resulting microstructures were analysed by scanning electron microscopy and consisted of various amounts of ferrite, bainite and retained austenite. Tensile strength in the range of 750 - 908 MPa was obtained with total elongation of 33-42%. © 2019.
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页码:243 / 247
页数:4
相关论文
共 17 条
  • [1] Talapatra A., Bandhyopadhyay N.R., Datta J., Correlation between Heat Treatment, Microstructure and Properties of Trip-Assisted Steels, In: World Academy of Science, Engineering and Technology, International Journal of Mechanical, Aerospace, Industrial, Mechatronic and Manufacturing Engineering, 7, 4, pp. 80-85, (2013)
  • [2] Nemecek S., Novy Z., Stankova H., Optimization of heat treatment of TRIP steels, La metallurgia italiana, pp. 47-51, (2006)
  • [3] Kucerova L., Opatova K., Kana J., Jirkova H., High Versatility of Niobium Alloyed AHSS, In: Arch, Metall. Mater, 62, 3, pp. 1485-1491, (2017)
  • [4] Kucerova L., Bystriansky M., Jenicek S., Francisco P., Effect of Deformation Conditions on Microstructure and Mechanical Properties of Low Alloyed Steel, In: Manufacturing Technology, 17, 5, pp. 752-756, (2017)
  • [5] Li S., Zhu R., Karaman I., Arro'yave R., Thermodynamic analysis of two-stage heat treatment in TRIP steels, In: Acta Materialia, 60, pp. 6120-6130, (2012)
  • [6] Nemecek S., Novy Z., Microstructure in TRIP steels after intercritical heat treatment, Proceedings of The 3rd International Conference on Advanced Structural Steels Gyeongju, (2006)
  • [7] Ding W., Hedstorm P., Li Y., Heat treatment, microstructure and mechanical properties of a C-Mn-Al-P hot dip galvanizing TRIP steel, Materials Science & Engineering, A674, pp. 151-157, (2016)
  • [8] Kucerova L., Jirkova H., Volkmannova J., Vrtacek J., Effect of Aluminium and Manganese Contents on the Microstructure Development of Forged and Annealed TRIP Steel, In: Manufacturing Technology, 18, 4, pp. 605-610, (2018)
  • [9] Suh D.W., Park S.J., Oh C.S., Ki S.J., Influence of partial replacement of Si by Al on the change of phase fraction during heat treatment of TRIP steels, Scripta Materialia, 5, pp. 1097-1100, (2007)
  • [10] Xie P., Et al., A high-performance TRIP steel enhanced by ultrafine grains and hardening precipitates, In: Materials & Design, 127, pp. 1-7, (2017)