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首页> 外文期刊>Journal of Mechanical Engineering >An Improved Quasi-Dynamic Analytical Method to Predict Skidding in Roller Bearings under Conditions of Extremely Light Loads and Whirling
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An Improved Quasi-Dynamic Analytical Method to Predict Skidding in Roller Bearings under Conditions of Extremely Light Loads and Whirling

机译:一种改进的拟动力分析方法,用于预测极轻负载和旋转条件下滚动轴承的打滑

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摘要

Slip often occurs in high-speed and light-load roller bearings (HSLLRBs) when the frictional drive force is inadequate to overcome the drag forces between the rolling elements and the raceway. Formerly, skidding analysis of HSLLRBs considering bearing whirling based on a simplified method using the Dowson-Higginson empirical model, although the analytical results of the cage slip fraction show significant discrepancies with the experimental data, as for extremely light radial loads. One of the main reasons is the inaccuracy of the evaluation of oil drag forces using the empirical equations. In this study, the elastohydrodynamic lubrication (EHL) method was adopted to calculate the oil film thickness and pressure distribution of HSLLRBs, so as to obtain more accurate oil drag forces. The cage speed and cage slip fraction were obtained by combining the whirl orbits, drag forces, load, kinematic equations and other related equations and then solved using the Newton-Raphson method. The skidding mechanism was investigated in terms of various operating parameters such as whirl orbit radii, radial load and viscosity. The results showed that the cage slip fraction and cage speed oscillate over time because of the whirl, which leads to an increase in the risk of bearing skidding damage. Under the extremely light load and high speed, the slip and influence of the whirl on bearing skidding increases as the whirl radius and radial load increases, while the viscosity shows a reverse trend. Therefore, in order to reduce slip and skidding damage, the whirl radius and radial load should be decreased suitably, while the viscosity should be increased moderately. A comparison between the calculated and experimental results shows that the proposed method is both feasible and valid.
机译:当摩擦驱动力不足以克服滚动体与滚道之间的阻力时,在高速轻载滚子轴承(HSLLRB)中经常会发生打滑。以前,尽管采用了道森-希金森(Dowson-Higginson)经验模型的简化方法,但考虑了轴承回旋的HSLLRB的滑移分析,尽管保持架滑移率的分析结果与实验数据存在很大差异,例如径向载荷非常轻。主要原因之一是使用经验方程式评估油阻力的准确性。本研究采用弹性流体动力润滑(EHL)方法计算HSLLRBs的油膜厚度和压力分布,从而获得更准确的油阻力。通过结合涡旋轨道,阻力,载荷,运动学方程和其他相关方程来获得笼速度和笼滑动率,然后使用牛顿-拉夫森方法进行求解。根据各种工作参数(如涡旋半径,径向载荷和粘度)研究了打滑机理。结果表明,由于旋转,保持架滑移率和保持架速度随时间波动,这导致轴承打滑损坏的风险增加。在极轻的负载和高速下,随着涡流半径和径向负载的增加,涡流的滑动和对轴承打滑的影响会增加,而粘度则呈现相反的趋势。因此,为了减少打滑和打滑的损害,应适当减小旋转半径和径向载荷,同时应适当增加粘度。计算结果与实验结果的比较表明,该方法既可行又有效。

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