Simulation modelling of dynamic processes due discontinuous frictional treatment of the flat surfaces

dc.citation.epage33
dc.citation.issueVolume 6, № 2
dc.citation.journalTitleUkrainian Journal of Mechanical Engineering and Materials Science
dc.citation.spage23
dc.contributor.affiliationLviv Polytechnic National University
dc.contributor.authorGurey, Volodymyr
dc.contributor.authorKorendiy, Vitaliy
dc.contributor.authorKuzio, Ihor
dc.date.accessioned2022-11-23T10:46:25Z
dc.date.available2022-11-23T10:46:25Z
dc.date.issued2020
dc.date.submitted2022
dc.description.abstractFriction treatment refers to surface strengthening (hardening) methods using highly concentrated energy sources. In the course of this processing in the surface layers of the processed surfaces of parts the strengthened layer with nanocrystalline structure is formed. The formed layer has specific physical, mechanical, chemical properties, as well as improved performance properties, which are significantly different from the base metal. A highly concentrated energy source is formed in the contact area of the tool-part due to the high-speed friction (60–90 m/s) of the tool on the treatment surface. Frictional treatment of flat parts according to the kinematics of the process is similar to grinding. The strengthening process was carried out on an upgraded surface grinder. The tool is a metal disk made of stainless-steel. Transverse grooves are formed on the working surface of the tool to intensify the process of forming a strengthened (reinforced) layer with a nanocrystalline structure. The grooves form additional shock loads in the contact area of the tool-treatment surface of the part. These shock loads increase the shear deformation of the metal of the parts’ surface during treatment, which affects into formation the quality parameters of the parts’ surface and surface layer. To study the friction treatment process, the calculation scheme of the elastic system of the machine was developed. A simulation model for the study of dynamic processes that take place during the friction treatment of flat surfaces was built. This model gives possibility to determine the displacements and velocities of the machine table on which the part is fixed and the tool, and to determine their mutual displacement and also calculate the reaction of the machine table.
dc.format.pages23-33
dc.identifier.citationGurey V. Simulation modelling of dynamic processes due discontinuous frictional treatment of the flat surfaces / Volodymyr Gurey, Vitaliy Korendiy, Ihor Kuzio // Ukrainian Journal of Mechanical Engineering and Materials Science. – Lviv : Lviv Politechnic Publishing House, 2020. – Volume 6, № 2. – P. 23–33. – Bibliography: 10 titles.
dc.identifier.doihttps://doi.org/10.23939/ujmems2020.02.023
dc.identifier.urihttps://ena.lpnu.ua/handle/ntb/57204
dc.language.isoen
dc.publisherLviv Politechnic Publishing House
dc.relation.ispartofUkrainian Journal of Mechanical Engineering and Materials Science
dc.relation.references[1] K. A. Yushchenko, et al., Inzheneriya poverhni [Surface engineering]. Kyiv, Ukraine: Naukova dumka Publ., 2007. [in Ukrainian]. [2] V. D. Evdokymov, L. P. Klymenko, and A. N. Evdokymova, Tekhnologiya uprochneniya mashynostroitelnych materialov [Hardening technology for engineering materials]. Odessa-Nykolaev, Ukraine: Yzd-vo NHHU im. Petra Mohyly, 2005. [in Russian]. [3] F. Mojtahedi, H. Shahverdi, and M.J. Torkamany, “Surface treatment of nano-structured steel with pulsed laser”, Materials Physics and Mechanics, no. 17, pp. 17–21, 2013. [4] S. Soundarapandian, and B. Dahotre Narendra, “Laser Surface Hardening”, Steel Heat Treating Fundamentals and Processes, vol. 4A., pp. 476–502, 2013. [5] X. Huang, at al., “Experimental research material characteristics effect on white layers formation in grinding of hardened steel”, The International Journal of Advanced Manufacturing Technology, vol. 66, no. 9–12, pp. 1555–1561, 2013. [6] V. Gurey, and I. Hurey, “The Effect of the Hardened Nanocrystalline Surface Layer on Durability of Guideways”, in Lecture Notes in Mechanical Engineering. Advanced Manufacturing Processes. Selected Papers from the Grabchenko’s International Conference on Advanced Manufacturing Processes (InterPartner–2019), vol. 1, pp. 63–72, 2020. [7] I. Hurey, at al., “The research in to components of friction force tool part during friction hardening of plate steel faces”, Advances in manufacturing science and technology, no. 3, pp. 56–64, 2014. [8] V. Gurey, V. Korendiy, and P. Dmyterko, “Mathematical model of dynamic process during friction hardening of flat surface”, Visnyk Natsionalnogo Universytetu Lvivska politehnika. Dynamika, mitsnist ta proektuvannia mashyn i pryladiv [Bulletin of the Lviv Polytechnic National University. Dynamics, strength and design of machines and devices], no. 788, pp. 79–85, 2014. [9] I. M. Bat, G. Y. Dzhanelidze, A. S. Kelzon, Teoreticheskaya mekhanika v primerakh i zadachakh [Theoretical mechanics in examples and problems]. St. Petersburg, Russia: Lan Publ., vol. 2, 2013. [in Russian]. [10] Ya. G. Panovko, Vvedeniye v teoriyu mekhanicheskikh kolebaniy [Introduction to the theory of mechanical oscillations]. Moskva, Russia: Nauka Publ., 1991. [in Russian].
dc.subjectfriction treatment, nanocrystalline layer, simulation model, surface hardening
dc.titleSimulation modelling of dynamic processes due discontinuous frictional treatment of the flat surfaces
dc.typeArticle

Files

Original bundle
Now showing 1 - 1 of 1
No Thumbnail Available
Name:
025-035.pdf
Size:
757.37 KB
Format:
Adobe Portable Document Format