Numerical analysis of hydrogen-assisted rolling-contact fatigue of wind turbine bearings

被引:5
作者
Toribio, J. [1 ]
Lorenzo, M. [1 ]
Vergara, D. [1 ]
Kharin, V. [1 ]
机构
[1] Univ Salamanca, Fracture Mat & Struct Integr Res Grp, Salamanca, Spain
来源
FRATTURA ED INTEGRITA STRUTTURALE | 2014年 / 30期
关键词
Hydrogen; assisted rolling; contact fatigue; Wind turbines; Bearings; Numerical analysis;
D O I
10.3221/IGF-ESIS.30.06
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Offshore wind parks at locations further from the shore often involve serious difficulties, e.g. the maintenance. The bearings of offshore wind turbines are prone to suffer hydrogen-assisted rolling-contact fatigue (HA-RCF). Three important aspects linked with bearing failures are being extensively researched: (i) rolling contact fatigue (RCF), (ii) influence of carbide particles on fatigue life, and (iii) local microplastic strain accumulation via ratcheting. However, there is no reference related to bearing failure in harsh environment. This way, this paper helps to gain a better understanding of the influence of hydrogen on the service life of offshore wind turbine bearings through a numerical study. So, the widely used RCF ball-on-rod test was simulated by finite element method in order to obtain the stress-strain state inside the bearings during life in service and, from this, to elucidate the potential places where the hydrogen could be more harmful and, therefore, where the bearing material should be improved.
引用
收藏
页码:40 / 47
页数:8
相关论文
共 16 条
[1]   Work hardening response of M50-NiL case hardened bearing steel during shakedown in rolling contact fatigue [J].
Arakere, N. K. ;
Subhash, G. .
MATERIALS SCIENCE AND TECHNOLOGY, 2012, 28 (01) :34-38
[2]   ROLLING-CONTACT DEFORMATION AND MICROSTRUCTURAL CHANGES IN HIGH-STRENGTH BEARING STEEL [J].
BHARGAVA, V ;
HAHN, GT ;
RUBIN, CA .
WEAR, 1989, 133 (01) :65-71
[3]   Evolution of subsurface plastic zone due to rolling contact fatigue of M-50 NiL case hardened bearing steel [J].
Bhattacharyya, Abir ;
Subhash, Ghatu ;
Arakere, Nagaraj .
INTERNATIONAL JOURNAL OF FATIGUE, 2014, 59 :102-113
[4]  
European Environment Agency, 2009, EUR ONSH OFFSH WIND EUR ONSH OFFSH WIND
[5]  
Glover D., 1982, ASTM STP, V771, P107
[6]   ELASTOPLASTIC FINITE-ELEMENT ANALYSIS OF 2-D ROLLING-PLUS-SLIDING CONTACT WITH TEMPERATURE-DEPENDENT BEARING STEEL MATERIAL PROPERTIES [J].
GUPTA, V ;
BASTIAS, P ;
HAHN, GT ;
RUBIN, CA .
WEAR, 1993, 169 (02) :251-256
[7]   Three-dimensional elastic-plastic stress analysis of rolling contact [J].
Jiang, YY ;
Xu, BQ ;
Sehitoglu, H .
JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME, 2002, 124 (04) :699-708
[8]   Material defects in rolling contact fatigue of railway wheels - the influence of defect size [J].
Kabo, E ;
Ekberg, A .
WEAR, 2005, 258 (7-8) :1194-1200
[9]   A STUDY OF SUBSURFACE CRACK INITIATION PRODUCED BY ROLLING-CONTACT FATIGUE [J].
KUMAR, AM ;
HAHN, GT ;
RUBIN, CA .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1993, 24 (02) :351-359
[10]   Ratcheting and fatigue behavior of a copper alloy under uniaxial cyclic loading with mean stress [J].
Lim, C. -B. ;
Kim, K. S. ;
Seong, J. B. .
INTERNATIONAL JOURNAL OF FATIGUE, 2009, 31 (03) :501-507