Журналы →  Chernye Metally →  2023 →  №6 →  Назад

65 years of the Department of "Technology of Metals and Materials Science" Tver State Technical University
Название Investigation of the structure and wear resistance of deposited high-speed steel after surface plastic deformation
DOI 10.17580/chm.2023.06.04
Автор D. A. Barchukov, L. E. Afanasyeva, V. V. Izmailov, M. V. Novoselova
Информация об авторе

Tver State Technical University, Tver, Russia:
D. A. Barchukov, Cand. Eng., Associate Prof., Head of the Dept. of Technology of Metals and Materials Science, e-mail: bda@mail.ru
L. E. Afanasyeva, Cand. Phys.-Math., Associate Prof. of the Dept. of Technology of Metals and Materials Science
V. V. Izmailov, Dr. Eng., Prof. of the Dept. of Applied Physics
M. V. Novoselova, Cand. Eng., Associate Prof., Dept. of Applied Physics

Реферат

The results of experimental studies of the microstructure and wear resistance of R2M8 high-speed steel obtained by pulse-arc surfacing with flux-cored wire are presented. At the stage of cooling during surfacing in the temperature range of martensitic transformation (from 300 to 60 ºC), shock surface plastic deformation of the bead was carried out. It is established that the deposited metal has a fine-grained structure with an average grain diameter of 10–11 μm. The phase composition of the deposited high-speed steel is martensite, residual austenite, dispersed eutectic and special carbides. The average level of microhardness is about 7200 MPa. The conducted studies have shown high efficiency of impact plastic deformation of the deposited high-speed steel during cooling after surfacing in the temperature range corresponding to the state of steel superplasticity. Impact surface plastic deformation, carried out under the conditions of the superplastic state of steel, led to an increase in microhardness up to 9000 MPa, the amount of residual austenite in the deposited metal decreased from 50 to 4 %. Wear tests have shown that surface plastic deformation increases the wear resistance of high-speed steel by 1.5 times.
The authors are grateful to A. Yu. Lavrentiev, Cand. Eng., for assistance in sample preparation.

Ключевые слова Pulse arc surfacing, high speed steel, surface plastic deformation, superplasticity, microstructure, microhardness, wear resistance
Библиографический список

1. Geller Yu. А. Tool steels. Moscow: Metallurgiya, 1983. 527 p.
2. Bogodukhov S. I., Kozik Е. S., Svidenko Е. V. Hardening of high speed steel R6M5. Chernye Metally. 2022. No. 11. pp. 59–65.
3. Hashemi N., Mertens A., Montrieux H. M. et al. Oxidative wear behaviour of laser clad high speed steel thick deposits: Influence of sliding speed, carbide type and morphology. Surface and Coatings Technology. 2017. Vol. 315. pp. 519–529.
4. Barchukov D. А. Improvement of the performance of high-speed steels by refining their structural state. Dissertation … of Candidate of Engineering Sciences. Tver, 2013. 154 p.
5. Barchukov D. А., Tsygvintsev А. V., Afanaseva L. Е. Features of the formation of the structure and properties of high-speed steel during pulse-arc surfacing. Vestnik Tverskogo
gosudarstvennogo tekhnicheskogo universiteta. Seriya "Tekhnicheskie nauki". 2019. No. 4. pp. 16–22.
6. Filippov М. А., Makarov А. V., Sheshukov О. Yu., Shveykin V. P. Technologies for improving wear resistance in mechanical engineering: textbook. Yekaterinburg: Izdatelstvo Uralskogo universiteta, 2022. 246 p.
7. Mamontov D. V., Sklizkov I. D., Asylbaev А. V., Vafin R. К. Influence of severe plastic deformation on characteristics of the hardened layer of high-speed tool steel R6M5. Materials. Technologies. Design. 2022. Vol. 4. No. 1 (7). pp. 30–38.
8. Gulyaev A. P. Superplasticity of steel. Moscow: Metallurgiya, 1982. 56 p.
9. Gvozdev A. E. Alternative technology of thermomechanical treatment of high-speed tungsten-molybdenum steel R6M5. Metal Science and Heat Treatment. 2005. Vol. 47. No. 11–12. pp. 556–559.
10. Ageev E. V., Gvozdev A. E. High speed steels: superplasticity and recycling. Kursk: Universitetskaya kniga. 2022. 386 p.
11. Chaus А. S. On the issue of wear resistance of high-speed steels. Trenie i iznos. 2008. Vol. 29. No. 1. pp. 33–45.
12. Chaus А. S., Rudnitskiy F. I. Influence of operating conditions of a cast metal-cutting tool on the features of its wear and durability. Part 1. Analysis of the operating conditions of tools. Trenie i iznos. 2007. Vol. 28. No. 5. pp. 449–456.
13. GOST 4543–2016. Structural alloy steel products. Specifications. Introduced: 01.10.2017.
14. GOST 9450–76. Measurements of microhardness by diamond instruments indentation. Introduced: 01.01.1977.
15. Kremnev L. S. Theory of alloying and creation on its basis of heat-resistant tool steels and alloys of optimal composition. Metallovedenie i termicheskaya obrabotka metallov. 2008. No. 11. pp. 18–28.
16. Badisch E., Mitterer C. Abrasive wear of high speed steels: influence of abrasive particles and primary carbides on wear resistance. Tribology International. 2003. Vol. 36. No. 10. pp. 765–770.
17. Wei S., Zhu J., Xu L. Research on wear resistance of high speed steel with high vanadium content. Materials Science and Engineering: A. 2005. Vol. 404, Iss. 1–2. pp. 138–145.
18. Afanasyeva L. Е., Novoselova М. V., Izmaylov V. V., Barchukov D. А. Investigation of tribotechnical properties of surfaces obtained by the action of concentrated energy flows. Tver: Tver State Technical University, 2022. 164 p.
19. Popov V. L. Contact interaction mechanics and friction physics. From nanotribology to earthquake dynamics. Moscow: FIZMATLIT, 2013. 352 p.
20. Myshkin N. К., Petrokovets М. I. Friction, lubrication, wear. Physical foundations and technical applications of tribology. Moscow: FIZMATLIT, 2007. 368 p.

Language of full-text русский
Полный текст статьи Получить
Назад