Вплив швидкості охолодження та перегріву вище лінії ліквідусу на формування структурних складових

Authors

DOI:

https://doi.org/10.15407/mom2022.02.003

Keywords:

carbon steel, continuous cast steel billet, hardening, cooling rate,, overheating of steels above the liquidus line

Abstract

In the paper, the comparative analysis of the process of forming a cast structure of carbon steel after termination of its crystallization in continuous cast steel billet  with diameter of 450 mm and overheating of steel to 50° C and 150° C above the liquidus line, and further pouring into wedge-shaped molds, is performed.
The microstructure of the skin zone after continuous casting of steel with maximum cooling rate of 106 °С/min consists of dendrites, which have branches of the first and second order, indicating their formation from the melt. When etching the surface of the specimens with solution of nitric acid, the microstructure of the skin zone was represented by ferrite, perlite with separate areas of martensite. The formation of ferrite, perlite and bainite areas was observed at a distance of 0.5 ingot radius and in the central part of the samples, and separate areas of bainite and perlite were observed in the central part of the ingot.
Upon further cooling of steels below the temperature of Ar3, the formation of excess ferrite along the boundaries of austenitic grains occurs.
Overheating of steels to 50° C and 150° C above the liquidus line gives rise to the formation of a more homogeneous structure. Non-metallic inclusions formed in steel do not exceed 1 point according to DSTU 4967:2015and are not the centres of crystallization – they are observed in perlite grains. There is the formation of separate inclusions of phases located in the perlite grain, which contributes to the finely dispersed hardening of steel. Increasing the overheating temperature leads to the formation of more finely divided inclusions and to the formation of a more homogeneous structure. After overheating to 50° C in the middle part of the wedge (cooling rate of 102-103 ° C/min) no ferrite formation is observed. At all overheating temperatures, perlite has a fine differentiation, but increasing in the overheating temperature above the liquidus line enhances the dispersion of both individual inclusions and perlite.

References

Qu T., Wang D., Wang H., Hou D., Tian J. Effect of Magnesium Treatment on the Hot Ductility of Ti-Bearing Peritectic Steel // Metals. – 2020. – №10. - Р. 1282(11). https://www.mdpi.com/2075-4701/10/10/1282

Aoued S., Danoix F., Allain S., Gaudez S Microstructure Evolution and Competitive Reactions during Quenching and Partitioning of a Model Fe–C–Mn–Si Alloy // Metals. – 2020. – №10(1). – Р. 137–143. https://doi.org/10.3390/met10010137

Presoly P., Six J., Bernhard C. Thermodynamic optimization of in dividable steel database by means of systematic DSC measurement sаccording the CALPHAD. Proceedings of the сonf. ser.: Materials Science and Engineering: A. – 2016. – Vol. 119, №1. Р. 1-8. 1. https://doi:10.1088/1757-899X/119/1/012013

Tu Y., Huang L., Zhang Q., Zhou X., Jiang J. Effect of Si on the partitioning of Mn between cementite and ferrite // Materials Science and Technology. – 2018. – Vol 34, №7. – Р. 780-785. https://doi.org/10.1080/02670836.2017.1407558

Zhu Z., Liang Y. J. Modeling Composition Design of Low-Alloy Steel’s Mechanical Properties Based on Neural Networks and Genetic Algorithms // Materials. – 2020. – 13(23). – Р. 5316(23). https://doi.org/10.3390/ma13235316

Бабаченко О. І., Дьоміна К. Г., Кононенко Г. А., Сафронов О. Л., Клинова, О.П. Вплив швидкості охолодження при затвердіванні безперервної заготовки на характеристики дендритної структури сталі марки ОС // Науково-технічний журнал «Металознавство та обробка металів». – 2021. – 27 (97). – С. 9-19. https://doi.org/10.15407/mom2021.01.009

Filonenko N. Yu. Structural state and thermodynamic stability of Al-Cu alloys // International Journal of Modern Physics B. – 2020. –Vol. 34. No. 8. – 2050057 (11 pages). https://doi.org/10.1142/S0217979220500575

Filonenko N. Yu., Galdina A. N., Babachenko А. I., Kononenko G. A. Structural State and Thermodynamic Stability of Fe-B-C Alloys // Physics and Chemistry of Solid State. – 2019. – Vol. 20. № 4. – Р. 437-444. https://doi.org/10.26565/2312-4334-2020-1-06

Published

2022-06-30

How to Cite

Filonenko Н. Ю., Babachenko О., Kononenko Г., & Safronova О. (2022). Вплив швидкості охолодження та перегріву вище лінії ліквідусу на формування структурних складових. Scientific Technical Journal ‘’Metal Science and Treatment of Metals’’, 28(2), 3–11. https://doi.org/10.15407/mom2022.02.003