Effect of material strength on shelling property of railway wheel steel

被引:0
|
作者
Kato, Takanori [1 ]
Makino, Taizo [1 ]
机构
[1] R and D Lab., Sumitomo Metal Indust. Ltd., Fuso-cho, Amagasaki, 660-0891, Japan
关键词
Railroads - Crack propagation - Strength of materials - Vehicle wheels - Stress intensity factors - Surface defects - Hydrostatic pressure;
D O I
10.2472/jsms.61.698
中图分类号
学科分类号
摘要
Shelling is the typical rolling contact fatigue (RCF) failure of the railway wheels. In order to evaluate effect of the material strength on the shelling properties of railway wheel steels, RCF tests and FE analyses were conducted. The RCF tests were carried out in the twin disc type testing machine. Wheel specimens made of two kinds of wheel steels with different strength were tested under water lubrications in the RCF tests. The elasto-plastic FE analyses were carried out to calculate the stress intensity factors (SIF) of the surface cracks in the RCF tests. The water penetrations into the surface cracks were taken into consideration in FE analyses. There are two main results in this study. Firstly, the RCF test results showed that the RCF strength of the higher strength wheel steel increased comparing with that of the lower strength wheel steel. Secondly, the SIFs of the branched cracks of the higher strength steel reduced as a result of being the shallower crack depth by decrease of the hydrostatic pressure in the cracks. In addition, these SIFs at the fatigue limits in the RCF tests corresponded to the threshold ranges of the SIF ΔKth of each material. Therefore, these results suggest that the fatigue limits in the RCF tests are influenced by the maximum crack depth. © 2012 The Society of Materials Science, Japan.
引用
收藏
页码:698 / 703
相关论文
共 50 条
  • [21] Fatigue Property of Low Cost and High Strength Wheel Steel for Commercial Vehicle
    Wang Ning
    Li Yi
    Du Lin-xiu
    Wu Di
    Liu Xiang-hua
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2009, 16 (04) : 44 - +
  • [22] PREVENTION OF ABNORMAL SHELLING FAILURE ON WHEEL TREADS OF RAILWAY CARS - APPLICATION OF SINTERED IRON BLOCKS SLIDING ON WHEEL TREADS
    OHYAMA, T
    KIGAWA, T
    OHTA, A
    JOURNAL OF JAPAN SOCIETY OF LUBRICATION ENGINEERS, 1982, 27 (12): : 915 - 921
  • [23] Fatigue strength evaluation of the Japanese railway wheel
    Sumitomo Metal Industries, Ltd., Osaka Steel Works, 5-1-109 Shimaya, Konohana-ku, Osaka 554-0024, Japan
    不详
    Fatigue Fract Eng Mater Struct, 8756, 4 (356-371):
  • [24] Fatigue strength evaluation of the Japanese railway wheel
    Okagata, Y.
    Kiriyama, K.
    Kato, T.
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2007, 30 (04) : 356 - 371
  • [25] Thermal and mechanical behaviour of railway wheel steel
    Ahlstrom, Johan
    Doktorsavhandlingar vid Chalmers Tekniska Hogskola, 2001, (1664): : 1 - 55
  • [26] Failure analysis of a cast steel railway wheel
    Fuoco, R
    Ferreira, MM
    Azevedo, CRF
    ENGINEERING FAILURE ANALYSIS, 2004, 11 (06) : 817 - 828
  • [27] Thermomechanical testing and modelling of railway wheel steel
    Landstrom, Eric Voortman
    Steyn, Erika
    Ahlstrom, Johan
    Vernersson, Tore
    INTERNATIONAL JOURNAL OF FATIGUE, 2023, 168
  • [28] Influence of Cooling Rate on the Strength of the Rims of Railway Wheel
    I. O. Vakulenko
    Materials Science, 2016, 51 : 839 - 842
  • [29] Influence of Cooling Rate on the Strength of the Rims of Railway Wheel
    Vakulenko, I. O.
    MATERIALS SCIENCE, 2016, 51 (06) : 839 - 842
  • [30] Effect of vanadium on strength and toughness of wheel steel normalized at different temperatures
    Institute for Structural Materials, Central Iron and Steel Research Institute, Beijing 100081, China
    不详
    Kang T'ieh, 2006, 3 (71-76):