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90th anniversary of Dept. "Materials science, Materials technology and Heat treatment of metals" of Nizhny Novgorod State Technical University
ArticleName The influence of strain aging on characteristics of austenite formed during heat treatment of spring wire
DOI 10.17580/chm.2024.08.02
ArticleAuthor M. N. Cheerova, T. V. Nuzhdina
ArticleAuthorData

Nizhny Novgorod State Technical University named after R. E. Alekseev, Nizhny Novgorod, Russia

M. N. Cheerova, Cand. Eng., Associate Prof., Dept. of Materials Science, Materials Technologies and Heat Treatment of Metals, e-mail: gavrita@yandex.ru
T. V. Nuzhdina, Cand. Eng., Associate Prof., Dept. of Materials Science, Materials Technologies and Heat Treatment of Metals, e-mail: vegas.80@mail.ru

Abstract

Using the example of the technology for manufacturing spring wire from steel 65G, which includes alternating operations of cold plastic deformation (drawing) and heat treatment, the structural transformations occurring in the material during this process are considered, leading to the obtaining of different characteristics of the austenite grain and affecting both the properties of the semi-finished product and for finished products in general. The influence of strain aging, occurring during cold plastic deformation, on the processes of formation of actual austenite grains when heating a spring wire for hardening has been studied. The dependences of the characteristics of austenite grains (grain size, degree of grain size, degree of inhomogeneity and dislocation density) on heating temperature for different initial states of the ferrite-cementite matrix of 65G steel were obtained. Differences in the initial states are determined depending on the type of dislocation substructure formed after preliminary cold plastic deformation, and the completeness of the processes occurring at the first stage of heating for hardening (strain aging, polygonization, recrystallization in ferrite, spheroidization of cementite). It has been established that by excluding the influence of random factors accompanying dynamic strain aging, the characteristics of the austenite grain are significantly improved: the resulting austenite grain is finer, more uniform, resistant to growth, while maintaining a sufficient dislocation density. By calculating the generalized indicator, it was revealed that the best set of austenite grain parameters, leading to an improvement in the structural homogeneity of 65G steel, was achieved after low-temperature artificial aging before final heat treatment.

keywords Аctual austenite grain, austenite grain characteristics, spring wire, drawing, strain aging, dislocation substructure, recrystallization processes, aging, granular pearlite
References

1. Komarova T. V., Skudnov V. A., Gavrova M. N. Reducing the nonuniformity of mechanical properties of spring heat-treated wire. Zagotovitelnye proizvodstva v mashinostroenii. 2008. No. 7. pp. 39–45.
2. Komarova T. V., Cheerova M. N., Terentyeva N. N. Structural heterogeneity in spring heattreated wire. Zagotovitelnye proizvodstva v mashinostroenii. 2012. No. 4. pp. 37–45.
3. Cheerova M. N., Komarova T. V., Dubinsky V. N. Development of measures to improve the quality of spring heat-treated wire. Zagotovitelnye proizvodstva v mashinostroenii. 2015. No. 3. pp. 39–44.
4. Cheerova M. N., Komarova T. V., Dubinskii V. N. Effect of initial structure on the characteristics of austenite formed under heat treatment of spring steels. Metal Science and Heat Treatment. 2021. Vol. 63, Iss. 1-2. pp. 11–17.
5. Yukhvets I. A. Drawing production. Moscow : Metallurgiya, 1969. 286 p.
6. Bernshteyn M. L. Thermomechanical processing of steel. Moscow : Metallurgiya, 1983. 324 p.
7. GOST 1071–81. Heat-treated spring steel wire. Specifications. Introduced: 01.01.1983.
8. Babich V. K., Gul Yu. P., Dolzhenkov I. I. Strain ageing of steel. Moscow : Metallurgiya, 1972.
320 p.
9. GOST 5639–82. Steels and alloys. Methods for detection and determination of grain size. Introduced: 01.01.1983.
10. Saltykov S. A. Stereometric metallography. Moscow : Metallurgiya, 1976. 376 p.
11. Kidin I. N. Effect of preliminary cold plastic deformation on the diffusion of carbon in austenite. MiTOM. 1971. No. 12. pp. 26–29.
12. Gorelik S. S., Skakov Yu. A., Rastorguev L. N. X-ray and electron-optical analysis. Moscow : MISIS, 1994. 328 p.
13. Cheerova M. N. Patterns of austenite grain formation and their application to improve the structural homogeneity and quality of spring wire: Dissertation ... Candidate of Engineering Sciences. Nizhny Novgorod : Nizhny Novgorod State Technical University named after R. E. Alekseev, 2008. 288 p.
14. Gorshunov M. G. The influence of structure parameters on optimization of spring wire production technology: thesis of inauguration of Dissertation ... of Candidate of Engineering Sciences. Nizhny Novgorod, 2004. 22 p.
15. Gorelik S. S., Dobatkin S. V., Kaputkina L. M. Recrystallization of metals and alloys. Moscow : MISIS, 2005. 432 p.
16. Foder J., Burja J., Klanˇcnik G. Grain size evolution and mechanical properties of Nb, V–Nb, and Ti–Nb boron type S1100QL. Metals. 2021. Vol. 11, Iss. 3. 492.
17. Bajželj A., Burja J. Influence of austenitisation time and temperature on grain size and martensite start of 51CrV4. Crystals. 2022. Vol. 12. Iss. 10. 1449.
18. Devra V. K., Maity J. Solute drag effect on austenite grain growth in hypoeutectoid steel. Philosophical Magazine Letters. 2020. Vol. 100, Iss. 6. pp. 245–259.
19. Chamanfar A., Chentouf S. M., Jahazi M., Lapierre-Boire L. P. Austenite grain growth and hot deformation behavior in a medium carbon low alloy steel. J. Mater. Res. Technol. 2020. Vol. 9. pp. 12102–12114.
20. Joydeep M. An analytical model of grain growth considering the conjoint effects of precipitate pinning and solute drag in steel. Philosophical Magazine Letters. 2022. Vol. 102. pp. 307–323.
21. Bernhard Ch., Kern M., Bernhard M. Some considerations on austenite grain growth kinetics from high-temperature laser scanning confocal microscopy observations. Steel Research International. 2023. DOI: 10.1002/srin.202300547
22. Novik F. S., Arsov Ya. B. Optimization of metal technology processes by planning experiments methods. Moscow : Mashinostroenie, Sofia : Tekhnika, 1986. 304 p.

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