employee
Moscow, Moscow, Russian Federation
employee
Moscow, Moscow, Russian Federation
UDC 669
UDC 621.785.5
Russian Library and Bibliographic Classification 342
Chemical and thermal treatment ensures high performance properties and durability of most mechanical engineering products. It is shown that the developing the possibility of surface hardening of critical parts may be associated with the use of new methods of their treatment. A model of vacuum carburizing is developed, which is based on practical results. A solution to the equation determining the carbon flux density depending on the technological saturation factors in acetylene is proposed. When developing the calculation method, the peculiarity of carburization of low-alloy steels was taken into account. Recommendations on the choice of cyclic acetylene supply are given. The cyclic mode of acetylene supply was evaluated by a number of parameters: the cycle structure in the form of time ratios of active a and diffusive (passive) d stages; the total time of active stages, the total time of diffusion stages, their ratio, the total number of n cycles during τ saturation. Two programs were studied: the first involves solving a direct diffusion problem, and the second involves solving an inverse diffusion problem. It is shown that the use of the second program is preferable.
: modeling, diffusion, carbon flux, layer, concentration curves, engineering factors
1. Wołowiec-Korecka E. Modeling methods for gas quenching, low-pressure carburizing and low-pressure nitriding. Engineering Structures. 2018;177:489-505.
2. Boldyrev AP, Gurov AM, Zhirov PD, Kravtsov SA, Privalov AS. The effect of the wear factor on the characteristics of plate-type shock-absorbing devices of railway rolling stock. Transport Engineering. 2024;10:27-35. DOIhttps://doi.org/10.30987/2782-5957-2024-10-27-35.
3. Pakhomova SA, Manayev OI. Effect of heat shotblast treatment exerted on the contact fatigue of carburised heat-resistant steel C0.12Cr2NiWV. Inorganic Materials: Applied Research. 2018;9(4):732-735. DOIhttps://doi.org/10.1134/S2075113318040251.
4. Balanovsky AE, Wu VG. Carburization of the metal surface by plasma surface treatment. Strengthening Technologies and Coatings. 2017;13(9(153):403-415.
5. Reinhold B. Plasma carburizing: exotic with potential. International Heat Treatment and Surface Engineering. 2009;3-4:136-140. DOI:https://doi.org/10.1179/174951409X12542264514202.
6. Otto FJ, Herring DH. Vacuum carburizing of aerospace and automotive materials. Heat Treating Progress. 2005;5(1):33-37.
7. Semenov MYu, Demidov PN, Ryzhova MYu, Korolev IP. Carbon mass transfer regularities at case-hardening in low-pressure atmospheres and boundary conditions of simulator. Bulletin of Bryansk State Technical University. 2016;3(51):102-107. DOIhttps://doi.org/10.12737/22048.
8. Absattarov SN, Tursunov NK, Bakhteev EM. Modeling thermochemical processes based on data mining. Universum: Technical Sciences. 2024;9-2(126):5-9.
9. Fedorov S, Fedorova L, Zaripov V. Increasing the wear resistance of the executive surfaces of machine parts concentrated energy flows. Proceedings of 2019 International Scientific Conference on Materials Science, 2020: Composites, Alloys and Materials Chemistry; Saint Petersburg: MS-CAMC; 2020;30(3):388-392. DOI:https://doi.org/10.1016/j.matpr.2019.12.382.
10. Smirnov AE, Fakhurtdinov RS, Ryzhova MYu, Pakhomova SA. The definition of conditions of vacuum carburizing on basis of calculation method. Strengthening Technologies and Coatings. 2018;14(6(162)):269-274.
11. Semenov M. Yu., Smirnov A. E., Ryzhova M. Yu. Problems of simulation of carbon mass transfer from low-pressure saturating atmosphere into steel. Metallovedenie I Termicheskaya Obrabotka Metallov. 2021;2(788):39-43.
12. Kula P, Pietrasik R, Dybowski K. Vacuum carburizing-process optimization. Journal of Materials Processing Technology. 2005;164–165:876-881.
13. Semenov MYu, Smirnov AE, Fomina LP, Absattarov SNU. Determination of carbon potential and carbon mass transfer coefficient during vacuum carburization of steels Metallovedenie I Termicheskaya Obrabotka Metallov. 2024;1(823):8-13. DOIhttps://doi.org/10.30906/mitom.2024.1.8-13. .
14. Fedin VM, Popova TA, Chernyshev KA, Fimkin AI. Grounds for application of a new technology for tail production. Transport Engineering. 2025;1:68-78. DOIhttps://doi.org/10.30987/2782-5957-2025-1-68-78.
15. Komarovsky NV, Otoka AG. Features of testing cogged wheels of traction gears of locomotives and multiple rolling stock (review). Transport Engineering. 2024;9:27-37. DOI:https://doi.org/10.30987/2782-5957-2024-9-27-37.
16. Atena H, Schrank F. Neiderdruck-Aufkohlung mit Hochdruck-Gasabsschreckung. HTM. 2002;57(4):247–256. DOI:https://doi.org/10.1515/htm-2002-570407.
17. Pakhomova SA, Unchikova MV, Fakhurtdinov RS. Gear wheels surface engineering by deformation hardening and carburization. Materials Science Forum. 2016;870:383-391. DOI:https://doi.org/10.4028/www.scientific.net/MSF.870.383.
18. Bykov YuA, Unchikova MV, Pakhomova SA, Pomelnikova AS, Silaeva VI. Selection method of material and heat treatment technology for mechanical engineering parts. Blanking Productions in Mechanical Engineering. 2015;8:43-47.



