Название |
Effect of austenitization temperature on structure and mechanical properties
of new medium-carbon economically alloyed steel |
Информация об авторе |
Perm National Research Polytechnic University, Perm, Russia
A. N. Yurchenko, Cand. Eng., Senior Lecturer, Dept. of Metal Science, Thermal and Laser Processing of Metals, e-mail: aleksmto@gmail.com Yu. N. Simonov, Dr. Eng., Prof., Head of the Dept. of Metal Science, Thermal and Laser Processing of Metals, e-mail: simonov@pstu.ru M. Yu. Simonov, Cand. Eng., Director of the Joint Laboratory of Fundamental Research in Metal Science, e-mail: simonov@pstu.ru |
Реферат |
The results of the analysis of the new economically alloyed steel 44Kh2G2S2MF are presented. The relationship “amount of austenite – heating temperature” was constructed with use a modern horizontal quenching dilatometer. In resistance furnaces with an oxidizing atmosphere, the heat treatment modes were carried out, within which heating was carried out at temperatures of complete and incomplete austenitization. It has been revealed that in the process of continuous cooling of steel, martensite/bainite and carbides of various dispersion and shape are formed from the upper range of the intercritical temperature range. The amount of martensite/austenite component does not exceed 5 % after each heat treatment mode. Impact bending tests showed that the fractures had a pitted structure, and the crack propagated along the body of the former austenite grain. Tensile tests have shown that when 44Kh2G2S2MF steel is loaded, the TRIP effect appears, as a result of which a deformation γ→α transformation occurs, leading to an increase in ductility. From the results of the study and analysis of literary sources, it follows that the range of mechanical properties of 44Kh2G2S2MF steel corresponds to different areas of the plasticity diagram of automotive steels, including the area of high-strength steels of the third generation. It has been established that to ensure the use of 44Kh2G2S2MF steel as a high-strength steel of the third generation, it is necessary to carry out heat treatment modes consisting of heating to austenitization temperatures above 800 °C, but lower than or equal to 830 °C, holding and cooling in still air. |
Библиографический список |
1. Yurchenko A. N., Simonov Yu. N. Structural features, mechanical properties and heat treatment of bainitic steels. Vestnik PNIPU. Mashinostroenie i materialovedenie. 2016. Vol. 18. No. 3. pp. 160–181. 2. Xuehui Hao, Xingchuan Zhao, Baoxu Huang, Hui Chen et. al. Influence of intercritical quenching temperature on microstructure, mechanical properties and corrosion resistance of dual-phase steel. Journal of Materials Engineering and Performance. 2020. Vol. 29. pp. 4446–4456. 3. Ersoy Erisir, Oguz Gurkan Bilir. Effect of intercritical annealing temperature on phase transformations in medium carbon dual phase steels. Journal of Materials Engineering and Performance. 2013. Vol. 23. pp. 1055–1061. 4. Safarpour M., Ekrami A. The effect of bainite volume fraction on wear behavior of AISI 4340 ferrite–bainite dual-phase steel. Journal of Materials Engineering and Performance. 2022. Vol. 31. pp. 8687–8698. 5. Shangping Chen, Radhakanta Rana, Chris Lahaije. Study of TRIP-aided bainitic ferritic steels produced by hot press forming. Metallurgical and Materials Transactions. 2014. Vol. 45A. pp. 2209–2218. 6. Nouri A., Badkoobeh F., Rabiei N., Hassannejad H. Evolutions of microstructural and mechanical properties of tempered dual-phase steels influenced by silicon content and the intercritical annealing temperature. Journal of Materials Engineering and Performance. 2022. Vol. 31. pp. 5441–5457. 7. Iurchenko A., Simonov I. Advanced high-strength steels for automotive engineering. E3S Web of Conferences. 2023. Vol. 376. pp. 1–12. 8. Zhenye Liang, Tianxia Zou, Wei Dai, Zhiheng Zhang et al. Compensate for longitudinally discre pant springback and bow in chain-die forming processes by multiple sections optimization. The International Journal of Advanced Manufacturing Technology. 2022. Vol. 121. pp. 6407–6430. 9. Nima Nadimi, Rostam Yadegari, Majid Pouranvari. Resistance spot welding of quenching and partitioning (q&p) third-generation advanced high-strength steel: process–microstructure–performance. Metallurgical and Materials Transactions A. 2023. Vol. 54A. pp. 577–589. 10. Jitendra Narayan Mohapatra, Satish Kumar Dabbiru G. Balachandran.Development of ultrahigh strength steel with a versatile range of properties by single stage quench partitioning process. Trans Indian Inst. Met. 2023. Vol. 76, Iss. 7. pp. 1905–1913. 11. Ben–Elechi S., Bahloul R., Chatti S. Investigation on the effect of friction and material beha vior models on the springback simulation precision: application to automotive part B-Pillar and material TRIP 800 steel. Journal of the Brazilian Society of Mechanical Sciences and Engineering. 2022. Vol. 44, Iss. 8. 380. 12. Man Liu, Jun-yu Tian, Feng Cai, Cheng-gang Pan et al. Chro-austempering treatment of a medium-carbon high-strength bainitic steel. J. Iron Steel Res. Int. 2023. Vol. 30. pp. 317–327. 13. Lirong Wang, Yilong Liang, Fei Zhao, Fahong Xu et al. Achieving high tensile properties and impact toughness in ultrahigh strength lean alloy steel by quenching and partitioning treatment. Archives of Civil and Mechanical Engineering. 2024. Vol. 24. 32. 14. Rodríguez-Muñoz J.-L., Pacheco-Cedeño J.-S., Bedolla-Jacuinde A., Medina-Flores A. Effect of microstructural morphology in low-carbon TRIP steels on their mechanical properties. MRS Advances. 2023. Vol. 8. pp. 1167–1171. 15. Duran-Nuñez A., Ramirez-Ledesma A. L., Lopez H., Juarez-Islas J. A. On the microstructural and mechanical behavior of a Fe-0.3C-2.3Mn-0.22Si-0.5Cr-0.13Ti-0.005B steel intended for automotive applications. Journal of Materials Engineering and Performance. 2020. Vol. 29, Iss. 10. pp. 6513–6519. 16. Jun Hu, Grant Thomas. Evolving the ‘‘banana chart’’: temperature and strain rate effects on tensile properties of new-generation advanced high-strength steels. The Journal of the Minerals, Metals & Materials Society. 2021. Vol. 73, Iss. 11. pp. 3204–3213. 17. Leontiev P. A., Simonov Yu. N., Panov D. O. Method of processing primary dilatometric data obtained under conditions of high-speed heating and cooling. Zavodskaya laboratoriya. Diagnostika materialov. 2014. Vol. 80. No. 6. pp. 45–48. 18. Panov D., Barsukova T., Smirnov A., Orlova E., Simonov Yu. Intercritical hardening of low-carbon steel with obtaining of a dispersed multiphase structure. Obrabotka metallov. 2017. No. 4 (77). pp. 6–18. 19. GOST 9013–59. Metals. Method of measuring Rockwell hardness. Introduced: 01.01.1969. 20. GOST 1497–84. Metals. Methods of tension test. Introduced: 01.01.1986. 21. Yurchenko A. N., Marieva M. A., Grebenkin R. D., Simonov Yu. N. Determination of critical temperatures Ac1 and Ac3 in steels of the alloying system Kh2G2S2MF using the dilatometric method and test hardening method. Vestnik Permskogo natsionalnogo issledovatelskogo politekhnicheskogo universiteta “Mashinostroenie, materialovedenie“. 2019. Vol. 21. No. 3. pp. 85–92. 22. Zhuan L. H., Wu K. M., Qiu J. A., Shirzadi A. A. et al. Effect of silicon content on carbide precipitation and low-temperature toughness of pressure vessel steels. MiTOM. 2017. No. 2. pp. 33–37. 23. Depinoy S., Toffolon-Masclet C., Urvoy S., Roubaud J. et al. Carbide precipitation in 2.25 Cr-1 Mo bainitic steel: effect of heating and isothermal tempering conditions. Metallurgical and Materials Transactions. 2017. Vol. 48A. pp. 2164–2178. 24. Saucedo-Muñoz M. L. Precipitation kinetics of carbides during cyclical and isothermal aging of 2.25Cr–1Mo steel and its effect on mechanical properties. Journal of Iron and Steel Research International. 2021. Vol. 28, Iss. 10. pp. 1282–1290. 25. Yurchenko A. N., Simonov Yu. N., Panov D. O., Zhitenev A. I. Transformations, structure and properties of 22Kh2G2S2MF steel during continuous cooling. Metallovedenie i termicheskaya obrabotka metallov. 2019. No. 10. pp. 33–37. 26. Pepelnjak T., Kayhan E., Kaftanoglu B. Analysis of non-isothermal warm deep drawing of dual-phase DP600 steel. International Journal of Material Forming. 2019. Vol. 12. pp. 223–240. 27. Kilic S., Ozturk F., Toros S. Analysis of yield criteria and flow curves on FLC for TWIP 900 steel. Experimental Techniques. 2020. Vol. 44. pp. 597–612. 28. Elliott R., Coley K., Mostaghel S., Barati M. Review of manganese processing for production of TRIP/TWIP steels, Part 1: Current practice and processing fundamentals. The Journal of the Minerals, Metals & Materials Society. 2018. Vol. 70, Iss. 5. pp. 680–690. 29. Maysuradze M. V., Ryzhkov M. A. Thermal stabilization of austenite during stepwise harde ning of steels for the automotive industry. Metallurg. 2018. No. 4. pp. 38–47. 30. SteelDefinitions. Today’s AHSS for Automotive. Available at: https://ahssinsights.org/blog/anew-global-formability-diagram (accessed: 08.04.2024). |