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80th anniversary of the Nizhny Tagil Institute of Technology — a branch of the Ural Federal University
Название Comparative analysis of mill roll processing technologies
DOI 10.17580/chm.2024.11.04
Автор V. F. Pegashkin
Информация об авторе

Ural Federal University, Nizhny Tagil Institute of Technology (branch), Nizhny Tagil, Russia
V. F. Pegashkin, Dr. Eng., Prof., Head of the Dept. of General Engineering, e-mail: v.f.pegashkin@urfu.ru

Реферат

In order to improve the service properties of rolling rolls, new roller materials are constantly being sought, such as hypereutectoid steels, bleached cast irons, wear-resistant alloys characterized by high hardness and wear resistance. Their machinability is difficult, which prevents the introduction of rolling rolls made of such materials in mills. Improving the processing technology of rolling rolls, determining alternative processing methods, conducting a comparative analysis to identify the most productive processing method is always an important problem. There is a traditional method of processing rolling roll streams: roughing the profile with a groove cutter; forming the profile with a shaped cutter; final processing with a passing cutter on a copying machine or on a CNC machine. The disadvantage of this scheme is the low productivity and low durability of the cutting tool. The use of milling allows to intensify the processing of complex and large-sized parts. Rough profile formation is possible when processing with a disc cutter. The milling cutter forms a groove in one or two turns, depending on the depth of the profile. The roughing of the profile is similar when processing with an end mill. The application of long–edged cutters with a tooth formed by a set of plates arranged along a helical line (milling cutter “corn”) is considered - a tool for high-performance roughing. The technological processes of processing rolling rolls using milling cutters as cutting tools are determined, the performance of each of the processing technologies is compared and the most promising one is recommended. It was found that when processing a part by milling, productivity can increase by 2,1 – 4,2 times compared with the traditional roll processing method - turning.

Ключевые слова Rolling rolls, roll processing, milling, processing technology, increasing productivity, milling, analysis of processing technology, technological capabilities
Библиографический список

1. Gun G. S., Sokolov V. E., Ogarkov N. N. Processing of rolling rolls. Moscow : Metallurgiya, 1983. 112 p.
2. Twardowski P., Wojciechowski S., Wieczorowski M., Mathia T. Surface roughness analysis of hardened steel after high-speed milling. Scanning. 2011. Vol. 33. pp. 386–395.
3. Budak E. Analytical models for high performance milling. International Journal of Machine Tools & Manufacture. 2006. Vol. 46. pp. 1489–1499.
4. Matlygin G. V. Increasing the efficiency of processing axial cutting tools made of high-speed steels by the turn-milling method: Dissertation … Candidate of Engineering Sciences. Irkutsk, 2024. 182 p.
5. Selivanov A. N., Nasad T. G. Analysis of technological capabilities of turn-milling. Vestnik Saratovskogo gosudarstvennogo tekhnicheskogo universiteta. 2020. No. 2 (85). pp. 66–71.
6. Khudyakov M. P., Tyumina A. S. Study of shaping during turn-milling of multifaceted profile surfaces. XLVII Lomonosov readings “The Legacy of M. V. Lomonosov and the achievements of modern science”. 2019. pp. 335–339.
7. Wojciechowski S., Twardowski P., Pelic M., Maruda R. W. et al. Precision surface characterization for finish cylindrical milling with dynamic tool displacements model. Precision Engineering. 2016. Vol. 46. pp. 158–165.
8. Buj-Corral I., Vivancos-Calvet J., Gonzalez-Rojas H. Influence of feed, eccentricity and helix angle on topography obtained in side, milling processes. International Journal of Machine Tools & Manufacture. 2011. Vol. 51. pp. 889–897.
9. Wojciechowski S. Machined surface roughness including cutter displacements in milling of hardened steel. Metrology and Measurement Systems. 2011. Vol. 18, Iss. 3. pp. 429–440.
10. Kalchenko V., Sira N., Kalchenko D., Aksonova O. Investigation of the milling cylindrical surfaces process with tool and shaft crossed axes. Technical sciences and technologies. 2018. No. 4 (14). pp. 18–27.
11. Kalchenko V., Kalchenko V., Sira N. Development of the single-setup milling process model of the shaft support necks and cams. Eastern-European Journal of Enterprise Technologies. 2020. No. 4 (1 (106)). pp. 48–54.
12. Binchurov A. S., Usevich N. I., Gordeev Yu. I. et al. Study of processes of microroughnesses formation on surfaces of parts during turn-milling. Proceedings of the XXVII International scientific and practical conference “Reshetnev readings” (Krasnoyarsk). 2023. pp. 493–495.
13. Kalchenko V., Sira N., Kuzhelnyi Y., Vynnyk V. Research of the milling process of a cylindrical surface by an oriented instrument. Technology audit and production reserves. 2020. No. 3 (1(53)). pp. 16–18.
14. Shalamov V. G. Cutting tool in mechanical engineering. Moscow; Vologda : Infra-Inzheneriya, 2024. 132 p.
15. Shalamov V. G., Topolov D. Yu. Control of the amplitude of forced oscillations during cylindrical milling. “Technological support of machine-building industries”: Collection of scientific papers of the I International scientific and technical conference. South Ural State University, 2014. pp. 492–499.
16. Serebrenitsky P. P. General technical reference book. Saint Petersburg : Politekhnika, 2004. 445 p.
17. Kosilova A. G., Meshcheryakova R. K. Handbook of mechanical engineering technologist. In 2 volumes. Vol. 1. 4th edition. Moscow : Mashinostroenie, 1985. 589 p.

Language of full-text русский
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