ArticleName |
Development
and research of forming the properties in cold resistant steels with
strength class not less than 950 MPa for the components of heavy
carrying and lifting machines |
ArticleAuthorData |
Nosov Magnitogorsk State Technical University (Magnitogorsk, Russia)
P. P. Poletskov, Dr. Eng., Prof., Dept. of Metal Processing Technology N. V. Koptseva, Dr. Eng., Prof., Dept. of Casting Processes and Materials Science Yu. Yu. Efimova, Cand. Eng., Associate Prof., Dept. of Metal Processing Technology A. S. Kuznetsova, Cand. Eng., Associate Prof., Dept. of Metal Processing Technology, e-mail: allakuznetsova.mgtu@mail.ru |
Abstract |
The paper presents new high-strength steels for the components of heavy carrying and lifting machines, which operates in the Far North and Arctic areas. Combination of the main parameters of the developing steels leaves behind the existing global analogues and demonstrates high strength, ductility as well as cold resistance at the temperature down to –70 °С: tensile strength not less than 1,200 MPa, yield strength not less than 950 MPa, relative elongation not less than 10 %, hardness not less than 350 HBW, impact strength KСV-70 not less than 30 J/cm2. 4 steel chemical compositions on the base of С–Mn–Mo alloying system with additives of nickel and copper as well as microalloying elements, which were used together or separately, are examined in this research. Thermokinetic diagrams of decomposition of overcooled austenite were built and temperature-temporal conditions of forming of bainitemartensite structure were determined; these conditions are related for the new high-strength cold-resistant steels containing 0.17–0.21 % C; 0.70–1.30 % Mn; 0.25–0.35 % Si and 0.28–2.00 % (Ni+Cu+Mo). Influence of varying chemical composition on phase transformations and structure during continuous cooling of the examined steels was established and the heat treatment procedure for achievement of the required construction strength (combination of high tensile strength and low temperature impact strength) was suggested. As a result, it was determined that the most wide range of cooling rate values for obtaining of bainite-martensite structure (not less than 10 °С/с) and the optimal complex of strength and toughness-ductile properties are provided in the steel with the following chemical composition (mass. %): 0.21 С; 0.30 Si; 0.73 Mn; 0.017 Cr; 2.00 (Ni+Cu+Mo); 0.027 Ti; 0.003 B after quenching from 860 °С.
The research was carried out by Nosov Magnitogorsk State Technical University under financial support of the grant of Russian Scientific Fund No. 13-19-20018 dated 20.04.2023, as well as of the remedies of the Ministry of Education and Science of Chelyabinsk region (Agreement No. 164 dated 28.06.2024), https://rscf.ru/project/23-19-20018/. |
References |
1. Chukin M. V., Poletskov P. P., Gushchina M. S., Kuznetsova A. S., Nikitenko O. A., Alekseev D. Yu. Development of the importsubstituting technology for rolled sheet production from high-strength structural steel for Arctic application. Proizvodstvo prokata. 2019. No. 4. pp. 5–11.
2. Poletskov P. P., Gulin A. E., Emaleeva D. G., Kuznetsova A. S., Alekseev D. Yu., Kukhta Yu. B. Analysis of actual directions of researches in the field of production of multi-functional materials for extremal operating conditions. Vestnik Magnitogorskogo gosudarstvennogo tekhnicheskogo universiteta im. G. I. Nosova. 2021. Vol. 19. No. 3. pp. 109–114. 3. Poletskov P. P., Koptseva N. V., Efimova Yu. Yu. et al. Regularities of structural and phase transformations in the cold-resistant steel of strength grade 1100 MPa. Metallovedenie i termicheskaya obrabotka metallov. 2023. No. 1(811). pp. 23–27. 4. Poletskov P. P., Koptseva N. V., Efimova Yu. Yu., Kuzntsova A. S. Influence of heat treatment on forming the complex of properties for high-strength cold-resistance steel. CIS Iron and Steel Review. 2023. Vol. 25. pp. 73–78. 5. Shilyaev P. V., Denisov S. V., Stekanov P. A. et al. Manufacture of steel rolled products of new generation in the conditions of Magnitogorsk Iron and Steel Works. Metallurg. 2020. No. 9. pp. 47–54. 6. Golubeva M. V., Sych O. V., Khlusova E. I. et al. Study of mechanical properties and destruction features of the new economically alloyed cold-resistant steel with guaranteed yield strength 690 MPa. Aviatsionnye materialy i tekhnologii. 2017. No. 4 (49). pp. 19–24. 7. Khlusova E. I., Sych O. V., Orlov V. V. Cold-resistant steels. Structure, properties, technologies. Fizika metallov i metallovedenie. 2021. Vol. 122. No. 6. pp. 621–657. 8. Nagao A., Ito T., Obinata T. Development of YP 960 and 1100 MPa Class Ultra High Strength Steel Plates with Excellent Toughness and High Resistance to Delayed Fracture for Construction and Industrial Machinery. JFE Technical Report. 2008. No. 11 (June). pp. 13–18. 9. Schastlivtsev V. M., Tabatchikova T. I., Yakovleva I. L. et al. Microstructure and properties of a low carbon welding steel after thermomechanical strengthening. Fizika metallov i metallovedenie. 2012. Vol. 113. No. 5. pp. 507–516. 10. Golosienko S. A., Motovilina G. D., Khlusova E. I. Influence of structure formed during quenching on the properties of highstrength cold-resistance steel after tempering. Vorposy materialovedeniya. 2008. No. 1 (53). pp. 32–44. 11. Kojima A., Fujioka М., Hoshino M. et. al. Progress of High Performance Steel Plates. Nippon Steel & Sumitomo Metal Technical Report. 2015. No. 110 (September). pp. 3–7. 12. Gladman T., Duleiu D., McIvor I.D. Structure-Property Relationships in Microalloyed Steels. Microalloying’75. Proc. Int. Symp. Union Carbide Corp. N.Y., 1977. pp. 25–48. 13. Herring D. H. Grain Size and Its Influence on Materials Properties. Industrial Heating. 2005. August. pp. 1–2. 14. Poletskov P. P., Malkov M. V., Mishukov M. V. et al. The features of heta treatment of high-strength economically alloyed cold-resistant steel. Chernaya metallurgiya. Byulleten nauchno-tekhnicheskoy i ekonomicheskoy informatsii. 2021. Vol. 77. No. 6. pp. 682–688. 15. Ivanov Yu. F. Influence of a grain size of initial austenite on the structure of packed martensite and iron alloys. Izvestiya vuzov. Chernaya metallurgiya. 1995. No. 12. pp. 33–38. 16. Uskov D. P. Increase of operating properties of high-strength complex-alloyed steels for casing tubes in cold-resistant and corrosion-resistant variants. Dissertation … of the candidate of technical sciences. Chelyabinsk. 2024. 21 p. 17. Sun B., Fazeli F., Scott C. et al. Microstructural Characteristics and Tensile Behavior of Medium Manganese Steels with Different Manganese Additions. Mater. Sci. Eng. 2018. Vol. 729. pp. 496–507. 18. Zhan Z., Shi Z., Wang Z. et al. Effect of Manganese on the Strength-Toughness Relationship of Low Carbon Copper and Nickel-Containing Hull Steel. Materials (Basel). 2024 Feb 22. Vol. 17 (5). p. 1012. DOI: 10.3390/ma17051012 19. Hu J., Du L., Liu H. et al. Structure Mechanical Property Relationship in a Low Carbon Medium Manganese Ultrahigh Strength Heavy Plate Steel with Austenite-martensite Submicro-laminate Structure. Mater. Sci. Eng. 2015. Vol. 647. pp. 144–151. 20. Field D. M., Magagnosc D. J., Hornbuckle B. C., etc. Tailoring γ-austenite Stability to Improve Strength and Toughness of a Medium Manganese Steel. Metall. Mater. Trans. 2022. Vol. 53. pp. 2530–2543. 21. Shilyaev P. V., Stekanov P. A., Sych O. V. et al. Development and putting into practice the new technologies for manufacture of steel rolled products of new generation for shipbuilding industry in the conditions of Magnitogorsk Iron and Steel Works. Metallurg. 2021. No. 5. pp. 12–23. 22. Shilyaev P. V., Denisov S. V., Stekanov P. A. et al. Development of the scientific ideas on phase and structural transformations in steels of various use. Chernaya metallurgiya. Byulleten nauchno-tekhnicheskoy i ekonomicheskoy informatsii. 2021. Vol. 77. No. 5. pp. 552–563. |