Physical Features of Anodic Plasma Electrolytic Carburising of Low-Carbon Steels

被引:12
|
作者
Shadrin, S. Yu. [1 ]
Belkin, P. N. [1 ]
Tambovskiy, I. V. [1 ]
Kusmanov, S. A. [1 ]
机构
[1] Kostroma State Univ, 17, Kostroma RU-156005, Dzerzhinskogo, Russia
基金
俄罗斯科学基金会;
关键词
Plasma electrolysis; Glow spectrum; Envelope thickness; Anodic carburising; GLOW-DISCHARGE ELECTROLYSIS;
D O I
10.1007/s11090-020-10062-6
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This study considers some aspects of electrolytic plasma in the process of anodic carburising of steel, including the nature of the glow in a vapour gaseous envelope, its thickness under various hydrodynamic conditions; it also examines the formation patterns of a hardened layer after carburising along with quenching in the same electrolyte. The glow in a vapour gaseous envelope was examined with a spectrometer; its profile and thickness were determined by solving energy and mass balance equations in a pre-anode area. The structure of the carburised layer and hardness distribution were explored with an optical microscope and a microhardness tester. Carbon concentration in the carburised layer was determined by means of optical emission spectroscopy. The investigation has revealed that the glow in a vapour gaseous envelope under carburising is a continuous emission from heated bodies-vapour gaseous phase and the sample without any electric discharges. It has been theoretically derived, that in laminar approximation the layer has maximal thickness under certain hydrodynamic conditions. This conclusion has been confirmed by homogeneous distribution of current density throughout the surface of the sample during its carburising under condition of force hydrodynamics, i.e. the sample being flowed round with cooled electrolyte. Aerated stirring in electrolyte does not provide homogeneous current density distribution, which falls in vertical direction. Anodic carburising of steel in a glycerol electrolyte followed by quenching results in the formation of a martensitic layer up to 200 mu m in thickness, within 5-min treatment, with maximal microhardness 1000 HV.
引用
收藏
页码:549 / 570
页数:22
相关论文
共 50 条
  • [41] Martensitic Transformation in Low-Carbon Steels
    S. K. Berezin
    A. A. Shatsov
    P. O. Bykova
    D. M. Larinin
    Metal Science and Heat Treatment, 2017, 59 : 479 - 485
  • [42] MARTENSITE TRANSFORMATION IN LOW-CARBON STEELS
    CHILTON, JM
    BARTON, CJ
    SPEICH, GR
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1970, 208 : 184 - &
  • [43] FATIGUE TESTS ON LOW-CARBON STEELS
    HEMPEL, M
    ARCHIV FUR DAS EISENHUTTENWESEN, 1972, 43 (04): : 345 - &
  • [44] WORK HARDENING OF LOW-CARBON STEELS
    GLADMAN, T
    HOLMES, B
    PICKERIN.FB
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1970, 208 : 172 - &
  • [45] MARTENSITE TRANSFORMATION IN LOW-CARBON STEELS
    CHILTON, JM
    BARTON, CJ
    SPEICH, GR
    JOURNAL OF METALS, 1968, 20 (08): : A21 - &
  • [46] SHOCK COMPRESSION OF LOW-CARBON STEELS
    SOBOLENK.TM
    COMBUSTION EXPLOSION AND SHOCK WAVES, 1966, 2 (04) : 78 - &
  • [47] DEFORMATION INSTABILITY OF LOW-CARBON STEELS
    VIOLAN, P
    SCRIPTA METALLURGICA, 1973, 7 (08): : 867 - 873
  • [48] A BORONIZING TREATMENT FOR LOW-CARBON STEELS
    TSIPAS, DN
    PEREZPEREZ, C
    JOURNAL OF MATERIALS SCIENCE LETTERS, 1982, 1 (07) : 298 - 299
  • [49] Martensitic Transformation in Low-Carbon Steels
    Berezin, S. K.
    Shatsov, A. A.
    Bykova, P. O.
    Larinin, D. M.
    METAL SCIENCE AND HEAT TREATMENT, 2017, 59 (7-8) : 479 - 485
  • [50] LOW-CARBON MANGANESE CARBURIZING STEELS
    MALINOV, LS
    YAKUSHECHKINA, LI
    MALINOVA, EL
    METAL SCIENCE AND HEAT TREATMENT, 1985, 27 (3-4) : 205 - 209