A new approach for the prediction of fatigue life in rolling bearings based on damage accumulation theory considering residual stresses

Jae-il Hwang, G. Poll
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Abstract

Today, the service life calculation of rolling bearings is standardized in ISO 281, based on the theory of Lundberg and Palmgren. In the standard calculation method, material properties such as fatigue limit stress were taken into account by introducing the fatigue limit stress proposed by Ioannides and Harris. This standard calculation method provides a reasonable range of fatigue life in good agreement with experimental results under ideal test conditions such as constant external load. However, complex operating conditions of bearings such as varying loads and oscillating motion are not considered. Therefore, there is a need for a new analytical calculation model that can predict the fatigue life of rolling bearings operating under these complex conditions. This makes it possible to advance the application of rolling bearings and optimize their use in machines such as wind turbines. In the proposed approach, the fatigue life is determined based on the Palmgren-Miner linear damage rule, evaluating the subsurface stresses below the rolling contact using the S-N curve according to the fatigue criterion proposed by Lundberg and Palmgren. All rolling contacts that occur in an internal stress cycle due to the internal dynamic behavior during rotating operations are evaluated individually and referred to as partial damage risks. The partial damage risks are accumulated linearly according to the Palmgren-Miner theory to obtain the load cycle to failure. At this time, the loaded volume is assessed along the depth from the contact area to the core of the bearing ring, which makes it possible to indicate the depth position of fatigue occurrence in terms of crack initiation. The material properties such as the fatigue limit stress and the probability of failure are taken from the S-N curve itself. To consider the residual stress, a simple link concept is suggested by using the ratio of the maximum contact pressure to the yield criteria. The proposed approach can be extended to calculate oscillating fatigue life regarding the number of rolling contacts at a given oscillation amplitude. In this study, it can be confirmed that the analytically determined fatigue lifetime according to ISO 281 is still close to the bearing life test result. In addition, it shows that the results obtained using the proposed approach agree well with the calculation results obtained using ISO 281.
基于考虑残余应力的损伤积累理论的滚动轴承疲劳寿命预测新方法
今天,滚动轴承的使用寿命计算在ISO 281中标准化,基于Lundberg和Palmgren的理论。在标准计算方法中,通过引入Ioannides和Harris提出的疲劳极限应力,考虑了材料的疲劳极限应力等性能。这种标准计算方法提供了一个合理的疲劳寿命范围,在理想的试验条件下,如恒定的外载荷,与实验结果很好地吻合。然而,没有考虑轴承的复杂运行条件,如变载荷和振荡运动。因此,需要一种新的分析计算模型来预测在这些复杂条件下运行的滚动轴承的疲劳寿命。这使得推进滚动轴承的应用并优化其在风力涡轮机等机器中的使用成为可能。该方法基于Palmgren- miner线性损伤准则确定疲劳寿命,根据Lundberg和Palmgren提出的疲劳准则,采用S-N曲线评估滚动接触下的次表面应力。在旋转操作过程中,由于内部动态行为,在内应力循环中发生的所有滚动接触都被单独评估,并被称为部分损伤风险。根据Palmgren-Miner理论,对局部损伤风险进行线性累积,得到失效前的载荷周期。此时,沿着从接触区域到轴承套圈核心的深度评估加载体积,这使得可以根据裂纹起裂指示疲劳发生的深度位置。疲劳极限应力和失效概率等材料性能均由S-N曲线本身得出。为了考虑残余应力,提出了使用最大接触压力与屈服准则之比的简单链接概念。所提出的方法可以推广到根据给定振荡幅值下滚动接触数计算振荡疲劳寿命。在本研究中,可以证实,根据ISO 281分析确定的疲劳寿命仍然接近轴承寿命试验结果。此外,该方法的计算结果与ISO 281的计算结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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