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A nonlinear dynamic model for the skidding and the over-skidding in industry scale angular contact ball bearing

机译:工业尺度角接触球轴承滑动的非线性动力学模型和过度平滑

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The skidding phenomenon, consisting of sliding and spinning may between the rolling elements and the raceways of bearings, can reduce significantly the service life. In order to early predict the arising of the skidding in angular contact bearings, a dynamic model is introduced in this paper. The centrifugal force and the gyroscopic effect are also taken into account to determine the load distribution determined by the rolling elements. The model of the rolling element orbital kinematics considers the elasto-hydrodynamic (EHD) lubrication and its contribution to the friction forces, along with the lubricant oil drag effect, the rolling element gravity and the ball-cage interactions. The fourth order Runge-Kutta integration and Newton-Raphson iteration methods are employed to calculate the load distribution, and the dynamic motion of the rolling elements and cage. The comparison between the results obtained by means of the proposed model and some experimental data shows a general good agreement. The experimental data have been obtained in a test rig equipped by an industry scale angular contact ball bearing under different axial load. Under high load, the experimental speed ratio of the cage versus the bearing inner race exceeds the pure kinematically determined value: this phenomenon is defined as over-skidding behavior and it is also simulated by the proposed model. The pure rolling state of rolling elements are also predicted by the proposed model at high axial load. The mechanism of skidding and over-skidding are also discussed based on the proposed model. In the future, the model presented will be supplemented with a temperature analysis, considering the variation of the lubricant viscosity in a full thermo- elasto-hydrodynamic (TEHD) approach.
机译:由滑动和纺纱组成的滑动现象可以在滚动元件和轴承滚道之间,可以显着降低使用寿命。为了早期预测角接触轴承中的滑动产生,本文介绍了一种动态模型。还考虑了离心力和陀螺效果以确定由滚动元件确定的负载分布。滚动元件轨道运动学的模型认为弹性流体动力学(EHD)润滑及其对摩擦力的贡献,以及润滑油拖曳效果,滚动元件重力和球笼相互作用。第四阶runge-Kutta集成和牛顿Raphson迭代方法用于计算负载分布,以及滚动元件和笼的动态运动。通过提出的模型获得的结果与一些实验数据之间的比较显示了一般的良好一致性。在由行业尺度角接触球轴承下的试验台中获得了实验数据,该钻机在不同的轴向载荷下。在高负荷下,笼的实验速度与轴承内圈的实验速度超过纯的运动内测定值:该现象定义为过度打滑行为,并且还由所提出的模型进行模拟。轧制元件的纯轧制状态也通过高轴向载荷的提出模型预测。还基于所提出的模型讨论了滑动和过度平滑的机制。将来,考虑到全热弹性 - 流体动力学(TEHD)方法中的润滑剂粘度的变化,呈现的模型将补充温度分析。

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