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Foundry Processes and Metal Science
Название Modeling the behavior of a hardening crust of a continuously cast slab and separation of phase components in Kh42-70 steels
Автор M. Yu. Chubukov, D. V. Rutsky, N. A. Zyuban, S. V. Ryaboshuk.
Информация об авторе

Volgograd State Technical University (Volgograd, Russia):

M. Yu. Chubukov, Post-graduate
D. V. Rutskiy, Cand. Eng., Associate Prof.
N. A. Zyuban, Dr. Eng., Prof., Head of the Chair “Technology of Materials”, e-mail: tecmat@vstu.ru

 

Peter the Great St. Petersburg Polytechnical University (St. Petersburg, Russia):
S. V. Ryaboshuk, Assistant

Реферат

The results of a study of the specific features of the influence of the chemical composition of steels on the hot plasticity of a solidcast continuous-cast ingot for the production of seamless pipes are presented. Complex modeling was carried out, which consisted in thermo-mechanical modeling (Gleeble 3800) of the behavior of the solidifying cortical layer of continuous-cast ingot during continuous casting and the study of the thermo-time nature of the separation of phase components during solidification of continuous-cast ingot with different chemical composition. As a result of thermo-mechanical modeling, it was established that all steels have a region of reduced plasticity in the temperature range of 800–1000 °C. The minimum level of hot plasticity for all steels is noted at a temperature of 900 °C. The level of strength characteristics according to the results of physical modeling of the behavior of a solid crust of continuous-cast ingot from steels with various doping schemes in the entire investigated range (700-1300 °C) differs towards higher values of temporal resistance and yield strength for low carbon steels with additives micro-alloying elements. According to the results of comparing the results of modeling - the thermo-mechanical modeling and the thermal nature of the separation of phase components – it was established that a decrease in plasticity in the range of 800–1000 °C is associated with the release of complex nitride and carbonitride phases. In particular, when considering the obtained dependences in detail, for steels without microalloying, an increase in the mass fraction of aluminum nitrides is noted, and for steels with microalloying, an increase in the mass fraction of complex carbide and carbonitride phases based on niobium is noted along with a decrease in the relative narrowing values. In addition, in steels, micro-niobium, there is a tendency to increase the level of strength characteristics. The most optimal level of strength and plastic characteristics is noted for steel with the lowest carbon content and a complex of micro-alloying elements.
The study was financially supported by the Russian Foundation for Basic Research. Project № 18-08-00050.

Ключевые слова Thermo-mechanical modeling, phase components, hot plasticity, steel, microalloying, cortical layer, continuously cast billet
Библиографический список

1. Available at: http://www.stahl-online.de/index.php/statistiken (accessed: 01.02.2019)
2. Gusarova T., Klein М. Quality evaluation of internal structure of continuously cast billets. Chernye Metally. 2018. No. 11. pp. 58–59.
3. Quality improvement of continuously cast slabs, blooms and billets. Chernye Metally. 2018. No. 3. pp. 27–28.
4. Wiens О., Moβner W. Improvement of quality of continuously cast billets via new coating for mould surface. Chernye Metally. 2016. No. 7. pp. 29–36.
5. Gushchin V. N., Ulyanov V. A. Study of the effect of heterogeneity of solidification front on axial porosity of continuously cast section billets. Chernye Metally. 2016. No. 12. pp. 21–24.
6. Ulyanov V. A., Gushchin V. N. Study of influence of solidification conditions on crack forming in continuously cast billets. Chernye Metally. 2012. No. 6. pp. 13–16.
7. Gushchin V. N., Ulyanov V. A. Mathematical and physical modeling of thermophysical processes in metallurgy. Nizhny Novgorod: NGTU, 2014. 157 p.
8. Braun A., Warzecha M., Pfeifer H. Numerical and physical modelling steel flow in two-stand tundish for different casting conditions. Metallurgical and Materials Transactions. 2010. Vol. 41, Iss. 3. pp. 549–559.
9. Efron L. I. Metal science in great metallurgy. Tube steels. Moscow: Metallurgizdat, 2012. 696 p.
10. Efimov V. А., Eldarkhanov А. S. State-of-the-art technologies for casting and crystallization of alloys. Moscow: Mashinostroenie, 1998. 359 p.
11. Guyot V., Martin J. F., Ruelle A. et al. Control of surface Quality of 0,08%<C<0,12% Steel Slabs in Continuous Casting. ISIJ International. 1996. Vol. 36. pp. S227–S230.
12. Jacobi H. Thesis of TU Clausthal. Germany. June 1991.
13. Nosochenko А. О. Study of influence of carbon on central chemical and structure heterogeneity and properties of low-alloyed tube steels: Dissertation … of Candidate of Engineering Sciences. Moscow, 2003. 180 p.
14. El-Bealy M. Mold Thermo-Mechanical Rigidity Criterion for Surface Quality of Continuous Casting of Steel. Materials Sciences and Applications. 2013. Vol. 4, Iss. 1. pp. 39–51.
15. Rudskoy A., Kolbasnikov N., Zotov O., Ringinen D. Investigation of the structure and properties of TRIP steels on Gleeble-3800 complex. Chernye metally. 2010. No 2. pp. 8–14.
16. Hojny M. Modeling Steel Deformation in the Semi-Solid State. Springer, Cham, 2018. DOI: 10.1007/978-3-319-67976-1.
17. Tobias B., Senk D., Walpot R., Steenken B. Hot Ductility Behavior of Boron Containing Microalloyed Steels with Varying Manganese Contents. Metallurgical and Materials Transactions. June 2015. Vol. 46B. pp. 1405–1408.
18. Mintz B. The Influence of Composition on the hot Ductility of Steel and to the problem of Transverse cracking. ISIJ International. 1999. Vol. 39. pp. 833–855.
19. Umanets V. V., Razumov D. А., Pozhivanov А. М. Effect of structural transformations on surface cracking in continuously cast slabs. Stal. 1982. No. 5. pp. 21–27.
20. Crown L. H. The influence of continuous casting parameters on hot tensile behavior in low carbon, niobium and boror steels: Ph. D. Thesis, University of the Witwaterstand. Johannesburg, 2008. 317 p.
21. Smirnov A. N., Kubersky S. V., Shtepan Е. V. Continuous casting of steel: tutorial. Donetsk: DonNTU, 2011. 482 p.
22. Crowther D. N. The effects of micro alloying elements on cracking during continuous casting. Proceedings of the International Symposium 2001 on Vanadium Application Technology. Beijing (China), Vanitec. Westerham, Kent (England). pp. 99–131.
23. Kolbasnikov N. G., Matveev М. А., Zotov О. G., Mishin V. V., Mishnev P. А., Nikonov S. V. Physical modeling of hot plasticity of microalloyed tube steel during continuous casting and hot rolling. Stal. 2014. No. 2. pp. 59–64.
24. Trutnev N. V., Lokhanov D. V., Chubukov M. Yu., Uskov D. P., Myakotina I. V. et. al. Corrosion-resistant pipe from low-carbon preperitic steel for oil and gas pipelines and method of its manufacture. Patent RF No. 2 647 201. Applied: 10.05.2017. Published: 14.03.2018. Bulletin No. 8.

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