The Relationship of Technological Processes Based on Plasma Electrolytic Treatment with Structural Changes and Tribological Properties of the Tool High-Speed Steel Surface

被引:0
作者
Grigoriev, S. N. [1 ]
Mukhacheva, T. L. [1 ,2 ]
Tambovskiy, I. V. [1 ,2 ]
Kusmanova, I. A. [2 ]
Podrabinnik, P. A. [1 ]
Khmyrov, R. S. [1 ]
Gaponov, V. A. [1 ]
Suminov, I. V. [1 ]
Kusmanov, S. A. [1 ,2 ]
机构
[1] Moscow State Univ Technol STANKIN, Dept High Efficiency Machining Technol, Moscow 127994, Russia
[2] Kostroma State Univ, Dept Math & Nat Sci, Kostroma 156005, Russia
关键词
friction coefficient; high-speed steel; microhardness; nitrocarburizing; plasma electrolytic treatment; quenching; tempering; wear; CARBON-STEEL; COATINGS; NITROGEN; WEAR;
D O I
10.1007/s11665-024-10431-8
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A technology has been proposed to increase the hardness and wear resistance of M2 high-speed tool steel by combining low-temperature nitrocarburizing using anodic plasma electrolytic treatment, stepwise heating in plasma electrolysis with a change in the polarity of the workpiece, high-temperature hardening in air and triple tempering release. The structure, phase and elemental composition of the surface layers of high-speed steel after plasma electrolytic treatment with quenching, as well as subsequent tempering, were studied using the methods of x-ray, SEM and EDX analysis. Tribological tests were carried out under dry friction conditions with assessment of the friction coefficient and weight wear, as well as calculation of the microgeometry of the worn surface to assess contact stiffness and determine the wear mechanism. It has been shown that the formation of a structure of highly alloyed martensite with nitride inclusions after nitrocarburizing with quenching and the release of finely dispersed carbides during subsequent tempering leads to hardening of the surface layer to 1090-1100 HV after quenching and to 1350-1380 HV after subsequent tempering. The nitrogen concentration in the surface layer as a result of low-temperature nitrocarburizing reaches up to 13 wt.%. The greatest reduction in the friction coefficient (2.1 times) and weight wear (5.5 times) compared to the untreated sample occurs after plasma electrolytic treatment for 10 minutes, followed by quenching and triple tempering. Contact hardness similarly increases by 1.73-1.83 times after quenching and by 2.37-2.70 times after quenching and triple tempering. The wear occurring in the friction pairs under study is defined as fatigue wear during dry friction and plastic contact.
引用
收藏
页数:15
相关论文
共 50 条
[31]   Martensitic transformation of a high-speed tool steel during continuous heat treatment [J].
Sackl, S. ;
Kellezi, G. ;
Leitner, H. ;
Clemens, H. ;
Primig, S. .
MATERIALS TODAY-PROCEEDINGS, 2015, 2 :635-638
[32]   Modification of Structure and Properties of Surfacing of High-Speed Steel by Electron-Beam Treatment [J].
Gromov, V. E. ;
Ivanov, Yu. F. ;
Emelyushin, A. N. ;
Potekaev, A. I. ;
Minenko, S. S. ;
Chapaikin, A. S. .
RUSSIAN PHYSICS JOURNAL, 2024, 67 (06) :727-732
[33]   THE PROPERTIES OF HIGH-SPEED STEEL Р6М5, DEPENDING ON THE COMBINED CHEMICAL HEAT TREATMENT [J].
Begatov J. ;
Ahmadjonovich S.B. ;
Yakubova M. ;
Kuchkarova D. ;
Djalilova M. .
International Journal of Mechatronics and Applied Mechanics, 2022, 2022 (11) :119-122
[34]   Effect of the number of passes of the electron beam on the structural and phase state of coatings based on high-speed tool steel [J].
Gnyusov, S.F. ;
Budnitskii, A.D. ;
Golkovskii, M.G. .
Welding International, 2013, 27 (09) :708-712
[35]   INFLUENCE OF PULSED MAGNETIC TREATMENT ON MICROSTRUCTURES AND MECHANICAL PROPERTIES OF M42 HIGH SPEED STEEL TOOL [J].
Ma Liping ;
Liang Zhiqiang ;
Wang Xibin ;
Zhao Wenxiang ;
Jiao Li ;
Liu Zhibing .
ACTA METALLURGICA SINICA, 2015, 51 (03) :307-314
[36]   On the Use of Cyclic Cryogenic Treatment to Improve the Properties of High-Speed Steel [J].
Piesko, Pawel ;
Korpysa, Jaroslaw ;
Zawada-Michalowska, Magdalena .
MATERIALS, 2024, 17 (23)
[37]   Elastic-Plastic Properties of Tribological Layers of WC–(Fe–Mn–C) Composites Formed after High-Speed Sliding Against a Steel [J].
Savchenko N.L. ;
Sevost’yanova I.N. ;
Tarasov S.Y. .
Steel in Translation, 2022, 52 (08) :742-748
[38]   Influence of vacuum-plasma nitride coatings on contact processes and a mechanism of wear of working surfaces of high-speed steel cutting tool at interrupted cutting [J].
Volosova, M. A. ;
Gurin, V. D. .
JOURNAL OF FRICTION AND WEAR, 2013, 34 (03) :183-189
[39]   Influence of vacuum-plasma nitride coatings on contact processes and a mechanism of wear of working surfaces of high-speed steel cutting tool at interrupted cutting [J].
M. A. Volosova ;
V. D. Gurin .
Journal of Friction and Wear, 2013, 34 :183-189
[40]   Laser surface treatment of sintered M42 high-speed steel diluted with iron [J].
Otasevic, M ;
Colaço, R ;
Ruiz-Navas, EM ;
Gordo, E ;
Vilar, R .
THERMEC'2003, PTS 1-5, 2003, 426-4 :2575-2580