Use of the fatigue index to study rolling contact wear

被引:19
作者
Salas Vicente, Fidel [1 ]
Pascual Guillamon, Manuel [1 ]
机构
[1] Univ Politecn Valencia, Mech & Mat Engn Dept, Camino Vera S-N, E-46022 Valencia, Spain
关键词
Wear; Fatigue index; Rolling contact; Peeling; COMPETITIVE ROLE; RAIL MATERIALS; SLIDING WEAR; SLIP RATIO; WHEEL; SURFACE; PREDICTION; MODEL; RCF; MECHANISMS;
D O I
10.1016/j.wear.2019.203036
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Although both wear and fatigue are inevitably associated with the wheel/rail contact, they are normally studied as different phenomena and both are commonly considered excluding. Wear of railway wheels and rails is usually studied by relating wear rate to the T gamma or T gamma/A parameters or by plotting the so called "wear maps", where different rolling parameters are related to the wear rate. On the other hand, fatigue in wheel/rail contact is mainly studied from the surface and subsurface stress or deformation fields and from the crack growth rate. However, one of the main causes of wear in rolling contact is the loss of material due to delamination processes that have their origin in the presence of surface fatigue cracks. So, if wear and fatigue are related, it should be possible to study both of them using the same method. In this paper, the fatigue index, based on the shakedown theory and used to predict the surface initiated fatigue of railway wheels, is proposed as a means to study the wear rate in rolling contact. The fatigue index is directly related to the apparition and growth of fatigue cracks at the surface and, thus, directly related to the peeling and spalling processes that constitute the severe and catastrophic wear mechanisms. The data collected from a series of twin-disc tests show that the wear rate correlates with the fatigue index following an exponential evolution independently of the normal load. Furthermore, a fatigue index around 0 marks the onset of severe wear.
引用
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页数:9
相关论文
共 48 条
[1]  
[Anonymous], 1967, J STRAIN ANAL ENG
[2]   Rolling-sliding laboratory tests of friction modifiers in dry and wet wheel-rail contacts [J].
Arias-Cuevas, O. ;
Li, Z. ;
Lewis, R. ;
Gallardo-Hernandez, E. A. .
WEAR, 2010, 268 (3-4) :543-551
[3]   A laboratory investigation on the influence of the particle size and slip during sanding on the adhesion and wear in the wheel-rail contact [J].
Arias-Cuevas, Oscar ;
Li, Zili ;
Lewis, Roger .
WEAR, 2011, 271 (1-2) :14-24
[4]   A unified material model to predict ratcheting response in head-hardened rail steel due to non-uniform hardness distributions [J].
Athukorala, Asitha C. ;
De Pellegrin, Dennis V. ;
Kourousis, Kyriakos I. .
TRIBOLOGY INTERNATIONAL, 2017, 111 :26-38
[5]   ROLLING SLIDING WEAR DAMAGE IN RAIL AND TYRE STEELS [J].
BOLTON, PJ ;
CLAYTON, P .
WEAR, 1984, 93 (02) :145-165
[6]   PLASTIC-FLOW AND SHAKEDOWN OF THE RAIL SURFACE IN REPEATED WHEEL RAIL CONTACT [J].
BOWER, AF ;
JOHNSON, KL .
WEAR, 1991, 144 (1-2) :1-18
[7]   A mathematical model to predict railway wheel profile evolution due to wear [J].
Braghin, F. ;
Lewis, R. ;
Dwyer-Joyce, R. S. ;
Bruni, S. .
WEAR, 2006, 261 (11-12) :1253-1264
[8]   The competitive role of wear and RCF: Full scale experimental assessment of artificial and natural defects in railway wheel treads [J].
Cantini, Stefano ;
Cervello, Steven .
WEAR, 2016, 366 :325-337
[9]   Surface initiated fatigue of pearlitic and bainitic steels under water lubricated rolling/sliding contact [J].
Clayton, P ;
Su, X .
WEAR, 1996, 200 (1-2) :63-73
[10]   Tribological aspects of wheel-rail contact: A review of recent experimental research [J].
Clayton, P .
WEAR, 1996, 191 (1-2) :170-183