Precision case hardening by low pressure carburizing (LPC) for high volume production

被引:4
|
作者
Korecki M. [1 ]
Wołowiec-Korecka E. [2 ]
Sut M. [1 ]
Brewka A. [1 ]
Stachurski W. [2 ]
Zgórniak P. [2 ]
机构
[1] Korecki, M.
[2] Wolowiec-Korecka, E.
[3] Sut, M.
[4] Brewka, A.
[5] Stachurski, W.
[6] Zgórniak, P.
来源
Korecki, M. (Maciej.Korecki@secowarwick.com) | 1600年 / Carl Hanser Verlag卷 / 72期
关键词
Case hardening; Hardening distortion; High pressure gas quenching; In-line production; Low pressure carburizing; LPC; Single-piece flow;
D O I
10.3139/105.110325
中图分类号
学科分类号
摘要
Traditionally, case hardening is based on carburizing in atmospheres and oil quenching; this is carried out in sealed quench furnaces and in continuous lines (pusher, roller or rotary furnaces). They are technologies and devices developed more than 50 years ago and, over the course of time, they have exhausted their development potential. At present, they hardly meet the incoming requirements of the modern industry regarding quality and replicability, integration and organization of production, and environment protection. A solution for weak points of traditional case hardening is the use of vacuum technologies and equipment. Vacuum carburizing increases the resulting precision and replicability, and the variety of vacuum equipment for heat treatment allows the adaptation to modern industry requirements. Two applications are described in the article. The first one - evolutionary - is based on the triple- chamber vacuum furnace for semi-continuous production as a wide alternative for traditional devices. The second system - innovative - is based on the true single-piece flow method. Both solutions have specific and characteristic properties that predispose them for different applications depending on quality requirements and organization of production. © Carl Hanser Verlag GmbH & Co. KG.
引用
收藏
页码:175 / 183
页数:8
相关论文
共 50 条
  • [31] Kanban for Lean Production in High Mix, Low Volume Environments
    Powell, Daryl J.
    IFAC PAPERSONLINE, 2018, 51 (11): : 140 - 143
  • [32] Production of the polyethylene wax by high and low pressure polymerization
    Marszalek, Gniewosz
    Zielinski, Janusz
    Ciesinska, Wieslawa
    PRZEMYSL CHEMICZNY, 2011, 90 (06): : 1264 - 1268
  • [33] Statistical results from high volume production of ultra stable precision quartz oscillators
    Cantor, Evan
    Vaish, Manish
    Proceedings of the Annual IEEE International Frequency Control Symposium, 1999, 1 : 358 - 361
  • [34] Hardening of the surface plasma jet high-frequency induction discharge of low pressure
    Kashapov, N. F.
    Sharifullin, S. N.
    INTERNATIONAL SCIENTIFIC AND TECHNICAL CONFERENCE INNOVATIVE MECHANICAL ENGINEERING TECHNOLOGIES, EQUIPMENT AND MATERIALS-2014, 2015, 86
  • [35] HIGH-VOLUME, LOW-PRESSURE TURBINE SPRAY GUNS
    MARG, K
    PLATING AND SURFACE FINISHING, 1987, 74 (05): : 14 - 14
  • [36] A rugged, high precision capacitance diaphragm low pressure gauge for cryogenic use
    Lago, Leatitia
    Herbeaux, Christian
    Bol, Marc
    Roy, Pascale
    Manceron, Laurent
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2014, 85 (01):
  • [37] EFFICACY OF HIGH VOLUME LOW-PRESSURE CUFFS IN PREVENTING ASPIRATION
    MCCLEAVE, DJ
    FISHER, M
    ANAESTHESIA AND INTENSIVE CARE, 1977, 5 (02) : 167 - 168
  • [38] LOW PRESSURE HIGH VOLUME CUFFED ENDOTRACHEAL TUBES IN EMERGENCY SURGERY
    Ruff, L.
    INTENSIVE CARE MEDICINE, 2012, 38 : S204 - S204
  • [39] Comparison of the influence of low temperature and high pressure on the free volume in polymethylpentene
    Danch, A.
    Osoba, W.
    Wawryszczuk, J.
    RADIATION PHYSICS AND CHEMISTRY, 2007, 76 (02) : 150 - 152
  • [40] HIGH-VOLUME/LOW-PRESSURE PAINT SPRAYING.
    Marg, Ken
    Products Finishing (Cincinnati), 1987, 51 (11): : 84 - 87