Simulation of Diffusion Processes in Chemical and Thermal Processing of Machine Parts

被引:8
作者
Kostyk, Kateryna [1 ]
Hatala, Michal [2 ]
Kostyk, Viktoriia [3 ]
Ivanov, Vitalii [4 ]
Pavlenko, Ivan [5 ]
Duplakova, Darina [2 ]
机构
[1] Natl Tech Univ Kharkiv Polytech Inst, Educ & Sci Inst Mech Engn & Transport, Dept Foundry, Kyrpychova 2, UA-61002 Kharkiv, Ukraine
[2] Tech Univ Kosice, Fac Mfg Technol Seat Presov, Dept Automobile & Mfg Technol, Bayerova 1, Presov 08001, Slovakia
[3] Donbas State Engn Acad, Dept Computerized Mechatron Syst Tools & Technol, Fac Machine Bldg, Akad 72, UA-84313 Kramatorsk, Ukraine
[4] Sumy State Univ, Fac Tech Syst & Energy Efficient Technol, Dept Mfg Engn Machines & Tools, Rymskogo Korsakova St 2, UA-40007 Sumy, Ukraine
[5] Sumy State Univ, Fac Tech Syst & Energy Efficient Technol, Dept Computat Mech, Rymskogo Korsakova St 2, UA-40007 Sumy, Ukraine
关键词
steel; diffusion layer; hardening; surface hardness; nitriding; mathematical modeling; NITROGEN; STEEL; BEHAVIOR; ENTROPY;
D O I
10.3390/pr9040698
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
To solve a number of technological issues, it is advisable to use mathematical modeling, which will allow us to obtain the dependences of the influence of the technological parameters of chemical and thermal treatment processes on forming the depth of the diffusion layers of steels and alloys. The paper presents mathematical modeling of diffusion processes based on the existing chemical and thermal treatment of steel parts. Mathematical modeling is considered on the example of 38Cr2MoAl steel after gas nitriding. The gas nitriding technology was carried out at different temperatures for a duration of 20, 50, and 80 h in the SSHAM-12.12/7 electric furnace. When modeling the diffusion processes of surface hardening of parts in general, providing a specifically given distribution of nitrogen concentration over the diffusion layer's depth from the product's surface was solved. The model of the diffusion stage is used under the following assumptions: The diffusion coefficient of the saturating element primarily depends on temperature changes; the metal surface is instantly saturated to equilibrium concentrations with the saturating atmosphere; the surface layer and the entire product are heated unevenly, that is, the product temperature is a function of time and coordinates. Having satisfied the limit, initial, and boundary conditions, the temperature distribution equations over the diffusion layer's depth were obtained. The final determination of the temperature was solved by an iterative method. Mathematical modeling allowed us to get functional dependencies for calculating the temperature distribution over the depth of the layer and studying the influence of various factors on the body's temperature state of the body.
引用
收藏
页数:14
相关论文
共 33 条
  • [1] Ionization and diffusion of metal atoms under electric field at metal/insulator interfaces; First-principles study
    Asayama, Yoshihiro
    Hiyama, Masaaki
    Nakayama, Takashi
    [J]. MATERIALS SCIENCE IN SEMICONDUCTOR PROCESSING, 2017, 70 : 78 - 82
  • [2] Co-existence of γ′N phase and γN phase on nitrided austenitic Fe-Cr-Ni alloys- I. experiment
    Che, H. L.
    Tong, S.
    Wang, K. S.
    Lei, M. K.
    Somers, Marcel A. J.
    [J]. ACTA MATERIALIA, 2019, 177 : 35 - 45
  • [3] Dhafer W.A.-R., 2016, E EUROPEAN J ENTERPR, V3, P44, DOI [10.15587/1729-4061.2016.69809, DOI 10.15587/1729-4061.2016.69809]
  • [4] Effects of two different types of MX carbonitrides on austenite growth behavior of Nb-V-Ti microalloyed ultra-high strength steel
    Dong, Ji
    Liu, Chenxi
    Liu, Yongchang
    Li, Chong
    Guo, Qianying
    Li, Huijun
    [J]. FUSION ENGINEERING AND DESIGN, 2017, 125 : 415 - 422
  • [5] Duong Nam N., 2019, J. Mech. Eng. Res. Dev, V42, P17, DOI [10.26480/jmerd.01.2019.17.25, DOI 10.26480/JMERD.01.2019.17.25]
  • [6] Electromechanical Surface Hardening of Tubing Steels
    Fedorova, L. V.
    Fedorov, S. K.
    Serzhant, A. A.
    Golovin, V. V.
    Systerov, S. V.
    [J]. METAL SCIENCE AND HEAT TREATMENT, 2017, 59 (3-4) : 173 - 175
  • [7] Gavriljuk V. G., 2016, Metallofizika i Noveishie Tekhnologii, V38, P67, DOI 10.15407/mfint.38.01.0067
  • [8] Finemet nanocrystalline soft magnetic alloy: Investigation of glass forming ability, crystallization mechanism, production techniques, magnetic softness and the effect of replacing the main constituents by other elements
    Gheiratmand, T.
    Hosseini, H. R. Madaah
    [J]. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2016, 408 : 177 - 192
  • [9] More than entropy in high-entropy alloys: Forming solid solutions or amorphous phase
    Guo, Sheng
    Hu, Qiang
    Ng, Chun
    Liu, C. T.
    [J]. INTERMETALLICS, 2013, 41 : 96 - 103
  • [10] Ivanov I.V., 2020, J ENG SCI, V7, P17