A descriptive model of wear evolution in rolling bearings

被引:110
作者
El-Thalji, Idriss [1 ]
Jantunen, Erkki [1 ]
机构
[1] VTT Tech Res Ctr Finland, Espoo, Finland
关键词
Wear evolution; Rolling contact fatigue; Abrasive wear; Rolling bearing; Condition monitoring; FATIGUE-CRACK INITIATION; LUBRICATED SILICON-NITRIDE; FINITE-ELEMENT-ANALYSIS; DAMAGE MECHANICS MODEL; PARTIAL RING CRACKS; EHD POINT CONTACTS; HIGH-CYCLE FATIGUE; LIFE-PREDICTION; BALL-BEARINGS; FRACTURE-MECHANICS;
D O I
10.1016/j.engfailanal.2014.06.004
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Rolling contact wear is a complex phenomenon that might involve different wear mechanisms (adhesive, abrasive, fatigue and corrosive) and different stress concentration mechanisms (asperity, dent, debris, inclusions, etc.). The interactions among these mechanisms might accelerate or decelerate the overall wear progress. Therefore, it is complicated to model and monitor the fluctuations of wear progress. The current descriptive models are either describing individual physical phenomena within rolling contact wear or describing a specific stage of wear progress. Thus, the interactions among different wear mechanisms and the transition events among different stages of wear progress are not sufficiently addressed. Therefore, the purpose of this paper is to propose a descriptive model of the wear evolution process in rolling bearings over the whole lifetime. The descriptive model utilises a wide range of empirical findings in the literature to describe the wear interactions and evolution in the five-stage scenario: running-in, steady-state, defect initiation, defect propagation, and damage growth. The new descriptive model provides the most probable scenario of wear evolution in rolling bearings, which is useful for modelling and monitoring the wear progress. It illustrates the wear evolution stages, the involved wear mechanisms in each stage, the interaction among wear mechanisms in each stage, the surface topology changes and the influencing factors within each stage. For design, condition monitoring and prognosis purposes, these aspects are significantly important to understand, model, test and monitor the wear evolution process. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:204 / 224
页数:21
相关论文
共 264 条
[1]   Contact fatigue failure modes of HVOF coatings [J].
Ahmed, R .
WEAR, 2002, 253 (3-4) :473-487
[2]   Effect of debris contamination on the fatigue life of roller bearings [J].
Ai, X .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY, 2001, 215 (J6) :563-575
[3]   Boundary element analysis of surface initiated rolling contact fatigue cracks in wheel/rail contact systems [J].
Akama, M ;
Mori, T .
WEAR, 2002, 253 (1-2) :35-41
[4]   A comparative experimental study on the use of acoustic emission and vibration analysis for bearing defect identification and estimation of defect size [J].
Al-Ghamd, Abdullah M. ;
Mba, David .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2006, 20 (07) :1537-1571
[5]   Modelling the optimum grain size on the low cycle fatigue life of a Ni based superalloy in the presence of two possible crack initiation sites [J].
Alexandre, F ;
Deyber, S ;
Pineau, A .
SCRIPTA MATERIALIA, 2004, 50 (01) :25-30
[6]   The role of a single surface asperity in rolling contact fatigue [J].
Alfredsson, B. ;
Dahlberg, J. ;
Olsson, M. .
WEAR, 2008, 264 (9-10) :757-762
[7]   Microstructure-sensitive modeling of rolling contact fatigue [J].
Alley, Erick S. ;
Neu, Richard W. .
INTERNATIONAL JOURNAL OF FATIGUE, 2010, 32 (05) :841-850
[8]  
Alley ES, 2010, J ASTM INT, V7
[9]   An efficient numerical analysis of starved thermohydrodynamically lubricated rolling line contacts [J].
Anandan, N. ;
Pandey, R. K. ;
Jagga, C. R. .
TRIBOLOGY INTERNATIONAL, 2008, 41 (9-10) :940-946
[10]  
Andersson S., 1999, PREDICTION WEAR ROLL