Rail rolling contact fatigue formation and evolution with surface defects

被引:52
作者
Zhang, S. Y. [1 ,2 ]
Spiryagin, M. [2 ]
Ding, H. H. [1 ]
Wu, Q. [2 ]
Guo, J. [1 ]
Liu, Q. Y. [1 ]
Wang, W. J. [1 ]
机构
[1] Southwest Jiaotong Univ, Tribol Res Inst, State Key Lab Tract Power, Chengdu 610031, Peoples R China
[2] Cent Queensland Univ, Ctr Railway Engn, Rockhampton, Qld, Australia
基金
澳大利亚研究理事会; 中国国家自然科学基金;
关键词
Surface defect; Rolling contact fatigue; Microstructure evolution; Critical size; WHITE ETCHING LAYER; MICROSTRUCTURE EVOLUTION; CRACK-PROPAGATION; SQUAT FORMATION; BEHAVIOR;
D O I
10.1016/j.ijfatigue.2022.106762
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Surface defects can induce serious rolling contact fatigue (RCF) damage at wheel/rail interfaces and even cause fracture failure of rail material. This study aims to explore the formation mechanism of surface defects on rails, and to trace the evolution process of RCF behavior of material around the surface defect. Experimental studies were conducted on a wheel/rail twin-disc machine considering two forms of defects: indentation defects caused by ballast impacts (IDBs) and indentation defects caused by cone penetration head impacts (IDCs). Results indicate that IDB can cause RCF cracks that propagate downward deep into the subsurface of rail due to the formation of a material hardening layer (MHL), causing severe damage. IDCs with different sizes and angles were grouped into an affected group and a non-affected group by considering a critical size dividing line and whether the MHLs existed on the defect surface or not. The evolution process of a crack in the affected group includes four main periods: fracture of the MHL, crack initiation, the rail steel matrix filling up the MHL gap and crack propagation downward. Further, the increase in both the angle and the depth of the IDC would lead to severe RCF damage.
引用
收藏
页数:13
相关论文
共 29 条
  • [1] EFFECT OF MICROSTRUCTURE ON FATIGUE CRACK-PROPAGATION IN IRON-CARBON ALLOYS
    AITA, CR
    WEERTMAN, J
    [J]. METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1979, 10 (05): : 535 - 544
  • [2] Squat formation and the occurrence of two distinct classes of white etching layer on the surface of rail steel
    Al-Juboori, A.
    Wexler, D.
    Li, H.
    Zhu, H.
    Lu, C.
    McCusker, A.
    McLeod, J.
    Pannil, S.
    Wang, Z.
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2017, 104 : 52 - 60
  • [3] Case study: Understanding the formation of squat-type defects in a metropolitan railway
    Bedoya-Zapata, A. D.
    Rojas-Parra, S.
    Diaz-Mazo, J. H.
    Garcia-Jimenez, J. A.
    Lopez-Londono, J. E.
    Vergara-Puello, R. A.
    Molina, L. F.
    Santa-Marin, J. F.
    Toro, A.
    Mesaritis, M.
    Lewis, R.
    Palacio, M.
    [J]. ENGINEERING FAILURE ANALYSIS, 2021, 123
  • [4] The competitive role of wear and RCF: Full scale experimental assessment of artificial and natural defects in railway wheel treads
    Cantini, Stefano
    Cervello, Steven
    [J]. WEAR, 2016, 366 : 325 - 337
  • [5] Rolling contact fatigue of white etching layer: Part 1 - Crack morphology
    Carroll, R. I.
    Beynon, J. H.
    [J]. WEAR, 2007, 262 (9-10) : 1253 - 1266
  • [6] Carroll R. Ian, 2006, SURFACE METALLURGY R
  • [7] EXPERIMENTAL INVESTIGATION ON ROLLING SLIDING CONTACT FATIGUE-CRACK INITIATION WITH ARTIFICIAL DEFECTS
    CHENG, W
    CHENG, HS
    KEER, LM
    [J]. TRIBOLOGY TRANSACTIONS, 1994, 37 (01): : 1 - 12
  • [8] A study on the effects of dented surfaces on rolling contact fatigue
    da Mota, V. M. M. B.
    Moreira, P. M. G. P.
    Ferreira, L. A. A.
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2008, 30 (10-11) : 1997 - 2008
  • [9] Grassie SL, 2011, 10 INT HEAV HAUL ASS
  • [10] Microstructure evolution of railway pearlitic wheel steels under rolling-sliding contact loading
    Hu, Y.
    Zhou, L.
    Ding, H. H.
    Lewis, R.
    Liu, Q. Y.
    Guo, J.
    Wang, W. J.
    [J]. TRIBOLOGY INTERNATIONAL, 2021, 154