UDC 621.785.5

The main results and directions of further research on low-temperature plasma formation of composite structures on functional surfaces of geometrically complicated metal products

Published в Science intensive technologies in mechanical engineering · Volume 2022, Issue 8, 2022 · Pages 20–26 · Rubrics: Welding, related processes and technologies
DOI 10.30987/2223-4608-2022-8-20-26
Received: 21.08.2022 Accepted: 30.08.2022 Published: 30.08.2022
Authors
1 A.A. Blagonravov Institute of Machine Science of the Russian Academy of Sciences (IMASH RAS)
2 A.A. Blagonravov Institute of Machine Science of the Russian Academy of Sciences (IMASH RAS)
Moskva, Russian Federation
3 A.A. Blagonravov Institute of Machine Science of the Russian Academy of Sciences (IMASH RAS)
Russian Federation
The attained results and valid directions of further research on improving the efficiency of low-temperature plasma for-mation of composite structures on the functional surfaces of geometrically complicated metal products (in particular, metal-cutting tools) are conducive to improving their durability and expanding areas of application
geometrically complicated metal product durability outer zone physical mechanical properties electrophysical properties low-temperature plasma hardening composite structure metal-cutting tool
Text (PDF): Read Download
References

1. Brzhozovsky, B.M., Zinina, E.P., Martynov, V.V. Surface properties improvement technologies of geometrically complivated products by impact of low-temperature plasma/ Science- intensive technologies in mechanical engineering, 2017, no.8(74), pp. 24-29.

2. Lyutov, A.G., Ryabov, Yu.V. The use of in-telligent control to ensure the quality of production processes/ STIN, 2015, no. 7, pp. 2-4.

3. Plotnikov, A.L. Upravlenie parametrami protsessa lezviynoy obrabotki na stankakh s ChPU. [Parametric control of the edge cutting machining on programmable-controlled machines]. VolgSTU,Tolyatti: CJSC "ONYX", 2012, 231 p. (in Russian).

4. Solonenko, V.G., Solonenko, L.A., Dvadnenko, I.V., et. al. Improving cutters / STIN, 2007, no. 7, pp. 12-16.

5. Vereshchaka, A.S., Tret'iakov, I.P. Rezhushchie instrumenty s iznosostoikimi pokrytiiami [Cutting tools with wear-resistant coat-ings]. Moscow, Mashinostroenie publ., 1986. 192 p. (in Russian).

6. Mokritskii, B.Ya., Management of tool per-formance during coating /STIN, 2010, no. 11, pp. 11-15.

7. Bez'yazichniy,V.F., Baskov, M.V. Computa-tional of cutting tool coatings efficiency for quality parameters of the workpiece surface beds // Sci-ence-intensive technologies in mechanical engi-neering, 2017, no. 7, pp. 20-24.

8. Latyshev, V.N., Naumov, A.G., Novikov, V.V. et al. Increasing resistance of high-speed tools through ion-laser surface hardening/ Machines and tools, 2005, no. 6, pp. 17-20.

9. Sheleg, V.K., Zhigalov, A.N., Bogdan, D.D. Study on effect of aerodynamic sound hardening for wear of coated carbide metal plates. Science and Technique, vol.19, no. 4, pp.271-279. https://doi.org/10.21122/2227-1031-2020-19-4-271-279 (in Russian).

10. Alexandrov, V.A., Petrova, L.G., Sergeeva, A.S., et.al. Combined plasma methods of thermochemical treatment for the creation of modified coatings on tools/ STIN, 2019, no. 33, pp. 13-19.

11. Savitsky, E.M., Burov, M.V. Elecricheskie i emissionnie svoystva splavov [Electrical and emission properties of alloys]. Moscow: Nauka 1978, 294 p. (in Russian).

12. Epifanov G.I. Solid State Physics: textbook, manual for higher technical universities/Moscow: Visshaya shkola., 1977, 288 p.

13. High speed machining (HSM) on CNC ma-chines. MIRTEX company website.

Login or Create
* Forgot password?