Slipping characteristics of rolling element bearing considering local defects and cage flexibility

滑倒 笼子 灵活性(工程) 方位(导航) 材料科学 有限元法 滚动轴承 结构工程 计算机科学 物理 声学 数学 工程类 人工智能 振动 统计
作者
Wanglong Chen,Changfeng Yan,Jianxiong Kang,Yu Tian,Zhifeng Shi,Lixiao Wu
出处
期刊:Measurement Science and Technology [IOP Publishing]
卷期号:36 (2): 026106-026106 被引量:3
标识
DOI:10.1088/1361-6501/ada177
摘要

Abstract Slipping and local defects are significant causes of abnormal vibration and instability in rolling element bearings (REBs). In particular, the secondary slipping of rolling elements (REs) triggered by local defects on the raceway would exacerbate the vibration and reduce rotational precision of the bearing system. Therefore, to more accurately reveal the characteristics of local slipping and the vibration response mechanisms in defective bearings, a comprehensive 4 N b + 4 degrees of freedom dynamic model of defective REB with flexible cage is proposed. This model based on the consideration of time-varying displacement excitation, cage stiffness and damping, pocket clearance, and isothermal elastohydrodynamic lubrication. Through comparisons the simulation results with both experimental and reference results, the proposed model is verified. The study investigated variations in contact forces between REs and overall raceways in detail, especially the trend of changes within the local defect area as the defect width increases. Furthermore, the effects of flexible cage stiffness, radial load, and speed on bearing slipping behavior are explored, along with the secondary slipping phenomenon triggered by local raceway defects. The results indicate that with increase of flexible cage stiffness and load, the REs slipping speed and cage slipping rate would decrease. Conversely, as rotational speed increases, both slipping speed and cage slipping rate would also increase.
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