Microalloyed, vacuum degassed high-strength steels with special emphasis on IF steels

被引:12
|
作者
Engl, B [1 ]
Gerber, T [1 ]
机构
[1] KRUPP HOESCH STAHL AG,MAT TECHNOL RES & DEV,CENT QUAL ASSURANCE,DORTMUND,GERMANY
来源
STEEL RESEARCH | 1996年 / 67卷 / 10期
关键词
D O I
10.1002/srin.199605515
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
A comparison with other high-strength concepts, high-strength IF steel has a particularly:high forming capacity with increased strength, while the sheet thickness reduction through forming is, on the whole, smallest with high-strength IF steel. Solid-solution hardening through Si, Mn and P is particularly suitable as a mechanism for increasing strength, as this leads to comparatively low formability losses with increased strength values. An additional increase in strength is possible using the bake-hardening effect. This can be achieved with an incomplete C and N binding through Ti and/or Nb, or through stoichiometric microalloying with V. The effect is basically caused by the relatively low thermodynamic stability of VC. V-alloyed, vacuum degassed steel combines in this way good forming behaviour with an increase in strength through bake-hardening. Through an increasing segregation of P at grain boundaries, solid solution hardening with this element can lead to unfavourable embrittlement in higher strength IF steel and to intercrystalline fracture. B-addition to the amount of 0.002% (mass content) greatly reduces the tendency to become brittle without leading to any remarkable losses with regard to formability. Examinations concerning the precipitation behaviour of Ti-IF-steel with P show that a formation of iron titanium phosphate (FeTiP) in the hot strip only occurs where there is an excess of Ti and high coiling temperatures are used. For a P-alloyed IF steel with stoichiometrical Ti-content no precipitation of FeTiP takes place in hot band, nor is the thermal activation in continuous annealing simulation sufficient to achieve a transformation of existing Ti-precipitates into FeTiP, which might occur according to literature.
引用
收藏
页码:430 / 437
页数:8
相关论文
共 50 条
  • [31] HIGH-STRENGTH MARAGING STEELS
    GRACHEV, SV
    SHEIN, AS
    METAL SCIENCE AND HEAT TREATMENT, 1989, 31 (3-4) : 237 - 243
  • [32] Reliability of high-strength steels
    Gulyaev, AP
    METAL SCIENCE AND HEAT TREATMENT, 1997, 39 (11-12) : 493 - 495
  • [33] On reliability of high-strength steels
    Metalloved Term Obrab Met, 11 (38-39):
  • [34] HIGH-STRENGTH STEELS OF FUTURE
    WILSON, WG
    METALS ENGINEERING QUARTERLY, 1974, 14 (02): : 1 - 7
  • [35] On high-strength structural steels
    Gulyaev, AP
    METAL SCIENCE AND HEAT TREATMENT, 1995, 37 (11-12) : 441 - 442
  • [36] HIGH-STRENGTH STRUCTURAL STEELS
    LACY, HC
    MACHINE DESIGN, 1967, 39 (29) : 27 - &
  • [37] Reliability of high-strength steels
    A. P. Gulyaev
    Metal Science and Heat Treatment, 1997, 39 : 493 - 495
  • [38] Reliability of high-strength steels
    Gulyaev, A.P.
    Metal Science and Heat Treatment, 39 (11): : 493 - 495
  • [39] Coaxing effect in stainless steels and high-strength steels
    Makajima, Masaki
    Jung, Jae Woong
    Uematsu, Yoshihiko
    Tokaji, Keiro
    MECHANICAL BEHAVIOR OF MATERIALS X, PTS 1AND 2, 2007, 345-346 : 235 - +
  • [40] Development of cast high strength microalloyed steels
    Mandal, P
    Chakrabarti, D
    Ray, KK
    Chakrabarti, AK
    INTERNATIONAL JOURNAL OF CAST METALS RESEARCH, 2004, 17 (02) : 89 - 93