Журналы →  Chernye Metally →  2019 →  №11 →  Назад

Engineering Technologies
Название Intensification of mechanical machining with cutting of workpieces of alloy ZHS6KP
Автор V. M. Yaroslavtsev, N. A. Yaroslavtseva
Информация об авторе

Bauman Moscow State Technical University (Moscow, Russia):

V. M. Yaroslavtsev, Dr. Eng., Professor of the Chair of Material Processing Technologies Department, e-mail: mt13@bmstu.ru
N. A. Yaroslavtseva, Cand. Eng., Associate Professor of the Chair of Material Processing Technologies Department

Реферат

It is shown that it is possible to improve the machinability by cutting bar workpieces from the heat-resistant casting alloy ZHS6KP obtained by multi-stage rolling, by purposeful control of deformation processes directly in the processing zone using the cutting method with advanced plastic deformation. The method uses a consistent energy effect on the material of the cut layer of two working tools: a strengthen and a cutting tool. The results of studies showing a significant reduction in the specific work of Ar cutting and as a consequence of this reduction in the cutting force and temperature in the cutting zone, which take place when turning the alloy ZHS6KP with pre-deformed layer of material. The extreme character of experimentally obtained graphic dependences of change of specific work of cutting and its components on specific load q created by the additional strengthening device is presented. The area of the most favorable working conditions of the cutting tool for the given values of the cutting mode parameters when using treatment with hardening of the surface layer of the processed material is specified. Experimental data of comparative resistance tests conducted at optimal load q, found an increase in the period of resistance of the cutting tool when turning with advanced plastic deformation of the alloy ZHS6KP depending on the selected cutting conditions So = 0,15...0.36 mm/Rev; v = 0.13...0.3 m/s; t = 1...4 mm 1.7 to 4 times. This increase in the period of resistance can significantly intensify the machining of the alloy, increasing productivity by increasing the cutting speed or feed, or while maintaining the existing modes by reducing the auxiliary time spent on the maintenance of the cutting tool.

Ключевые слова Workpiece, cutting workability, combined methods, cutting with advanced plastic deformation, performance, period of resistance, metal working
Библиографический список

1. Gurevich Ya. L., Gorokhov М. V., Zakharov V. I. et. al. Modes of cutting difficult materials: reference book. 2nd edition, revised and extended. Moscow: Mashinostroenie, 1986. 240 p.
2. Yaroslavtsev V. M. A new characteristic of metal workability by cutting. Izvestiya vysshikh uchebnykh zavedeny. Mashinostroenie. 1989. No. 5. pp. 144–148.
3. Ravi Shankar M., Verma R., Rao B. C. et al. Severe plastic deformation of difficult-to-deform materials at near-ambient temperature. Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science. 2007. Vol. 38A. Iss. 9. pp. 1899–1905.
4. Dalsky А. М. What is technological heredity. Tekhnologiya metallov. 1998. No. 1. pp. 2–6.
5. Vasilyev A. S., Yamnikov А. S., Yamnikova О. А., Matveev I. А. Influence of hereditary technological errors of production of a basic pipe on parameters of the assembled propulsion section. Chernye Metally. 2019. No.1. pp. 67–71.
6. Yaroslavtsev V. M., Yaroslavtseva N. A Prediction of reliability of renovated machine`s parts based on the analysis of a restoration technology structure. Nadezhnost i kontrol kachestva. Metody menedzhmenta kachestva. 1999. No. 8. pp. 52–58.
7. Kryvyi P. D., Dzyura V. O., Tymoshenko N. M., Krupa V. V. Technological Heredity and Accuracy of the Cross-Section Shapes of the Hydro-Cylinder Cylindrical Surfaces. ASME 2014 International Manufacturing Science and Engineering Conference collocated with the JSME 2014 International Conference on Materials and Processing and the 42nd North American Manufacturing Research Conference. (June 9–13). Vol. 2. Processing. USA. 2014.
8. Dalsky А. М., Suslov А.G., Nazarov Yu. F. et. al. Mechanical engineering: encyclopedia. Volume III-3. Manufacturing technology of machine parts. Moscow: Mashinostroenie, 2000. 840 p.
9. Yaroslavtsev V. M. Mechanics of the process of cutting plastically deformed metals with heterogeneous properties along the thickness of the cut layer. Vestnik MGTU imeni N. E. Baumana. Seriya: Mashinostroenie, 1993. No. 4. pp. 93–103.
10. Fam S. B., Kursin О. А., Chigirinsky Yu. L. et. al. The study of the method of honing with advanced plastic deformation during the processing of large articles made of low carbon steels. Izvestiya Volgogradskogo gosudarstvennogo tekhnicheskogo universiteta. 2018. No. 7 (217). pp. 63–66.
11. Shavinskaya А. V. Improvement of roughness at metal processing by cutting with advanced plastic deformation. Nauchny vzglyad v budushchee. 2018. Vol. 1. No. 9. pp. 15–20.
12. Yaroslavtsev V. М., Yaroslavtseva N. А. The perfection of technology for recycling steel chips. Chernye Metally. 2018. No.12. pp. 66–71.
13. Kraynev D. V., Polyanchikov Yu. N., Bondarev А. А. Improving the efficiency of turning deformable steels and alloys with advanced plastic deformation. Volgograd: Volgogradsky gosudarstvenny technichesky universitet, 2015. 160 p.
14. Dolmatov А. I., Kurin М. А., Voronko V. V., Skorchenko I. V. Methods for intensification of turning disks and shafts of gas turbine engines made of hard-to-work materials. Visnik Natsionalnogo technichnogo univesitetu Ukraini «Kiivsky politechnichniy institut». Seriya: Mashinobuduvaniya. 2015. No. 2 (74). pp. 84–89.
15. Sato M., Kato Y., Tsutiya K. On the cutting mechanism of cold-rolled aluminum alloy. Journal of Japan Institute of Light Metals. 1978. Vol. 28. No. 2. pp. 93–97.
16. Shaturov D. G., Shatutov G. F., Zholobov А. А. Technological features of finishing turning shafts. Mogilev: Belorussko-rossiyski univesitet, 2014. 192 p.
17. Bobrov V. F. Fundamentals of the theory of metal cutting. Moscow: Mashinostroenie, 1975. 344 p.
18. De Vos P., Stahl J.-E. Metal cutting. Theories in Practice. Seco Tools AB, Lund-Fagersta, Sweden, 2014. 183 p.
19. Yaroslavtsev V. М. The effectiveness of methods for advanced strain hardening of the cut layer material when machining. Vestnik MGTU imeni N. E. Baumana. Seriya: Mashinostroenie. 2015. No. 1(100). pp. 119–127.
20. Kovshov А. N. Engineering Technology. Moscow: Mashinostroenie, 1987. 320 p.
21. Yaroslavtsev V. М., Yaroslavtseva N. А. Modernization of technological equipment for implementation of cutting technology with advanced plastic deformation. Remont. Vosstanovlenie. Modernizatsiya. 2019. No. 4. pp. 16–21.
22. Yaroslavtsev V. М. Explosion and superfluidity in the processing of metal cutting. Proceedings of the 6th All-Russia meeting-workshop «Engineering issues of the new technology» (Moscow, 16–18 May). Moscow, 2001. pp. 65–66.
23. Vishnyakov М. А., Bogdanovich V. I., Prokopovich К. V., Gromov Е. G. The effect of thermoplastic hardening on the microstructure of heat-resistant and titanium alloys. Izvestiya Samarskogo nauchnogo tsentra Rossiyskoy akademii nauk. 2010. Vol. 12. No. 4 (2). pp. 370–375.
24. Jambor M., Bokůvka O., Novу F. F., Trško L., Belan J. Phase transformations in nickel base superalloy inconel 718 during cyclic loading at high temperature. Production engineering archives. 2017. No. 15. pp. 15–18.
25. Rekht R. F. Destructive thermoplastic shift. Works of American Society of Mechanical Engineers. Series Е. Applied Mechanics. 1964. Vol. 31. No. 2. pp. 34–39.
26. Handbuch der Fertigungstechnik. Spanen. In 2 books; book 1. Edited by G. Spur, Т. Stoeferle. Translation from German edited by Yu. М. Solomentstev. Moscow: Mashinostroenie, 1985. 688 p.
27. Zorev N. N. Mechanics of metal cutting. Moscow: Mashgiz, 1956. 368 p.

Language of full-text русский
Полный текст статьи Получить
Назад