Finite Elements modelling and assessment of ceramic rollers with edge cracks

Yuri Kadin , Charlotte Vieillard , Jeroen Wensing , Anand Theerthan
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Abstract

To ensure reliability of hybrid cylindrical roller bearings each ceramic roller is inspected, and scrapped if a surface imperfection above the critical size is detected. This inspection aims to reduce the potential root cause of Rolling Contact Fatigue (RCF) which can occur during operation, shortening the bearing life. The rejection criterion is based on experimental and theoretical knowledge, which for the last decade was developed in SKF for the material imperfections mainly located on the rolling element raceway. These imperfections are subjected to high contact pressure and therefore are considered as the primary root cause of RCF failure. Regarding rollers, however, imperfections can be present beyond the raceway, i.e. at the roller chamfer where the lower risk of RCF is expected, because the edge imperfections are typically out of the rolling contact zone. Nevertheless, the risk associated with these features should be assessed too, chiefly because the size of edge imperfections can be rather large. In our previous study, the imperfection termed as a Missing Material was studied, combining the semi-analytical tool for the contact mechanics and the Finite Elements (FE) method for the stress analysis. In the current work, another imperfection type is considered, and this is a surface crack located at the chamfer of ceramic roller. The RCF analysis is based on the semi-analytical evaluation of the rolling contact pressure (between a ceramic roller and a steel inner ring), and computational fracture mechanics for the estimation of fatigue crack propagation.

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陶瓷辊边缘裂纹的有限元建模与评估
为确保混合圆柱滚子轴承的可靠性,每个陶瓷滚子都要经过检查,如果发现表面缺陷超过临界尺寸,则将其报废。这种检查的目的是减少滚动接触疲劳(RCF)的潜在根源,这种疲劳可能在运行过程中发生,从而缩短轴承的使用寿命。剔除标准以实验和理论知识为基础,是 SKF 在过去十年中针对主要位于滚动体滚道上的材料缺陷而开发的。这些缺陷承受着很高的接触压力,因此被认为是导致 RCF 失效的主要根本原因。然而,滚子的缺陷可能存在于滚道之外,即滚子倒角处,由于边缘缺陷通常不在滚动接触区域内,因此预计发生 RCF 的风险较低。然而,与这些特征相关的风险也应进行评估,这主要是因为边缘缺陷的尺寸可能相当大。在我们之前的研究中,我们结合接触力学的半分析工具和应力分析的有限元(FE)方法,对被称为 "缺失材料 "的缺陷进行了研究。在本次研究中,我们考虑了另一种缺陷类型,即位于陶瓷辊筒倒角处的表面裂纹。RCF 分析基于对滚动接触压力(陶瓷滚子和钢内圈之间)的半分析评估,以及用于估计疲劳裂纹扩展的计算断裂力学。
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