Impact of the thermomechanical load on subsurface phase transformations during cryogenic turning of metastable austenitic steels

被引:0
|
作者
Hendrik Hotz
Benjamin Kirsch
Jan C. Aurich
机构
[1] TU Kaiserslautern,Institute for Manufacturing Technology and Production Systems
来源
关键词
Martensite; Cryogenic turning; Metastable austenitic steel; Deformation-induced phase transformation;
D O I
暂无
中图分类号
学科分类号
摘要
When machining metastable austenitic stainless steel with cryogenic cooling, a deformation-induced phase transformation from γ-austenite to α′-martensite can be realized in the workpiece subsurface. This leads to a higher microhardness and thus improved fatigue and wear resistance. A parametric and a non-parametric model were developed in order to investigate the correlation between the thermomechanical load in the workpiece subsurface and the resulting α′-martensite content. It was demonstrated that increasing passive forces and cutting forces promoted the deformation-induced phase transformation, while increasing temperatures had an inhibiting effect. The feed force had no significant influence on the α′-martensite content. With the proposed models it is now possible to estimate the α′-martensite content during cryogenic turning by means of in-situ measurement of process forces and temperatures.
引用
收藏
页码:877 / 894
页数:17
相关论文
共 50 条
  • [1] Impact of the thermomechanical load on subsurface phase transformations during cryogenic turning of metastable austenitic steels
    Hotz, Hendrik
    Kirsch, Benjamin
    Aurich, Jan C.
    JOURNAL OF INTELLIGENT MANUFACTURING, 2021, 32 (03) : 877 - 894
  • [2] Effect of thermomechanical conditions on the kinetics of phase transformations in austenitic metastable steel
    Lebedev, A.A.
    Koval'chuk, B.I.
    Zaitseva, L.V.
    Strength of Materials, 1995, 27 (03) : 124 - 128
  • [3] Thermomechanical hardening of stable and metastable austenitic steels
    Baraz, V. R.
    Gladkovskii, S. V.
    Ishina, E. A.
    METAL SCIENCE AND HEAT TREATMENT, 2005, 47 (11-12) : 552 - 555
  • [4] Thermomechanical hardening of stable and metastable austenitic steels
    V. R Baraz
    S. V. Gladkovskii
    E. A. Ishina
    Metal Science and Heat Treatment, 2005, 47 : 552 - 555
  • [5] Predicting the martensite content of metastable austenitic steels after cryogenic turning using machine learning
    Moritz Glatt
    Hendrik Hotz
    Patrick Kölsch
    Avik Mukherjee
    Benjamin Kirsch
    Jan C. Aurich
    The International Journal of Advanced Manufacturing Technology, 2021, 115 : 749 - 757
  • [6] Predicting the martensite content of metastable austenitic steels after cryogenic turning using machine learning
    Glatt, Moritz
    Hotz, Hendrik
    Koelsch, Patrick
    Mukherjee, Avik
    Kirsch, Benjamin
    Aurich, Jan C.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2021, 115 (03): : 749 - 757
  • [7] Impact Load Effect on Phase Transformations in Steels
    Bunchuk, A. Yu.
    Bunchuk, Yu. P.
    METALLOFIZIKA I NOVEISHIE TEKHNOLOGII, 2008, 30 : 737 - 742
  • [8] Correction to: Predicting the martensite content of metastable austenitic steels after cryogenic turning using machine learning
    Moritz Glatt
    Hendrik Hotz
    Patrick Kölsch
    Avik Mukherjee
    Benjamin Kirsch
    Jan C. Aurich
    The International Journal of Advanced Manufacturing Technology, 2021, 117 : 2009 - 2009
  • [9] On the deformation behaviour and martensitic transformations of metastable austenitic steels
    Onyuna, M
    Oettel, H
    Martin, U
    Weiss, A
    ADVANCED ENGINEERING MATERIALS, 2004, 6 (07) : 529 - 535
  • [10] Effect of the deformation degree at low temperatures on the phase transformations and properties of metastable austenitic steels
    Vologzhanina, Svetlana
    Igolkin, Alexey
    Peregudov, Alexey
    Baranov, Igor
    Martyushev, Nikita
    OBRABOTKA METALLOV-METAL WORKING AND MATERIAL SCIENCE, 2022, 24 (01): : 73 - 86