High cycle fatigue behavior of titanium microalloyed high-strength beam steels

被引:0
|
作者
Zhi-jun Gao
Guang-fei Pan
Yu Song
Shui-ze Wang
Xiao-yu Ye
Xin-ping Mao
机构
[1] University of Science and Technology Beijing,Beijing Advanced Innovation Center for Materials Genome Engineering
[2] State Key Laboratory of Vanadium and Titanium Resources Comprehensive Utilization,Pangang Group Research Institute Co., Ltd.
[3] Yangjiang Branch (Yangjiang Advanced Alloys Laboratory),Guangdong Laboratory for Materials Science and Technology
关键词
Titanium microalloyed steel; High cycle fatigue; Fatigue fracture; Critical inclusion size;
D O I
暂无
中图分类号
学科分类号
摘要
The realization of an ideal combination of mechanical and fatigue properties is prerequisites for practical application of titanium (Ti) microalloyed steel in automotive field. The fatigue behavior of four Ti microalloyed high-strength beam steels with different Ti contents was systematically studied. The results show that the content of microalloying element Ti has a significant effect on the fatigue properties, especially in the steel with a high Ti content. For the experimental Ti microalloyed steel, inclusion-induced crack initiation is the main fatigue failure mode. Different from general fatigue fracture mechanism in Ti-contained steel, no TiN, which is the most detrimental to fatigue behavior, was found in fatigue crack initiation area. However, the large-sized TiN and oxide complex inclusion with a core–shell structure is the dominant cause of fatigue fracture. Because of the intense-localized deformation at the interface between complex inclusion and matrix, the angular TiN in the outer shell has a serious deteriorating effect on the fatigue properties, which is consistent with the result of the Kernel average misorientation map. Besides, the modification effect of a small amount of MnS on large-sized inclusion is not obvious and has little effect on the fatigue behavior. For more practical guidance, the critical inclusion sizes of the experimental steels were also investigated by experimental extrapolation method. With the increasing tensile strength, the inclusion sensitivity of the experimental steels increases, leading to the small critical inclusion size.
引用
收藏
页码:2267 / 2279
页数:12
相关论文
共 50 条
  • [31] Mechanical Properties of Heat Treated High-Strength Microalloyed Steels
    Metal Science and Heat Treatment, 39 (3-4):
  • [32] Mechanical properties of heat treated high-strength microalloyed steels
    Bol'shakov, VI
    METAL SCIENCE AND HEAT TREATMENT, 1997, 39 (3-4) : 164 - 167
  • [33] A review of research and development on titanium microalloyed high strength steels
    Huo, Xiangdong
    Xia, Jinian
    Li, Liejun
    Peng, Zhengwu
    Chen, Songjun
    Peng, Ching-Tun
    MATERIALS RESEARCH EXPRESS, 2018, 5 (06):
  • [34] High-Cycle Fatigue Fracture Behavior of Microalloyed Bainitic Steels for Hot Forging
    Hu Fangzhong
    Hui Weijun
    Yong Qilong
    ADVANCES IN CHEMICAL, MATERIAL AND METALLURGICAL ENGINEERING, PTS 1-5, 2013, 634-638 : 1746 - 1751
  • [35] Fatigue assessment of welded high-strength steels
    Moeller, Benjamin
    Baumgartner, Joerg
    Wagener, Rainer
    Kaufmann, Heinz
    Melz, Tobias
    STAHLBAU, 2015, 84 (09) : 620 - 628
  • [36] Fatigue behaviour of high-strength tool steels
    Jung, I.
    HTM-JOURNAL OF HEAT TREATMENT AND MATERIALS, 2010, 65 (05): : 278 - 284
  • [37] High strength microalloyed steels
    Ikeda, Masakazu
    Anan, Gorou
    R and D: Research and Development Kobe Steel Engineering Reports, 2002, 52 (03): : 47 - 51
  • [38] Influence of High Frequency Peening on Fatigue of High-Strength Steels
    Leitner, Martin
    Stoschka, Michael
    Schanner, Richard
    Eichlseder, Wilfried
    FME TRANSACTIONS, 2012, 40 (03): : 99 - 104
  • [39] High-cycle Fatigue Fracture Behavior of Ultrahigh Strength Steels
    Weijun HUI~(1
    JournalofMaterialsScience&Technology, 2008, (05) : 787 - 792
  • [40] High-cycle fatigue fracture behavior of ultrahigh strength steels
    State Key Laboratory of Advanced Steel Processing and Products, Beijing 100081, China
    不详
    不详
    不详
    J Mater Sci Technol, 2008, 5 (787-792):