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Cage Speed of Hydrodynamic Rolling Hybrid Bearings

机译:流体动压混合轴承的保持架速度

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Hydrodynamic bearings are subjected to wear during starts and stops due to the absence of sufficient film pressure to effect complete separation of the sliding surfaces. In an earlier publication, our group reported the development of a new hydrodynamic rolling hybrid bearing (HRHB) to overcome the wear problem in hydrodynamic bearings. In the configuration, the transition of operation modes between the rolling bearing supporting state and the hydrodynamic bearing supporting state was realized by the clearance of the rolling bearing. Here we report on the development of a method to identify the operation modes for HRHBs based on monitoring the cage speed of the rolling bearing. The variation of cage speed with the shaft speed is measured. The effects of external load and starting time on the cage speed are also investigated experimentally. The results show that variation in the cage speed reflects changes in the load on the rolling bearing, as well as the operation modes of the HRHBs. With increases in the shaft speed, the variation in the cage speed presents three stages: the increasing stage, the decreasing stage, and the stationary stage. In the first two stages, the HRHB works at the rolling bearing supporting state while in stationary stage, the HRHB works at the hydrodynamic bearing supporting state. In additions to its property of no wear sufferance during starts and stops, compared to hydrodynamic bearings there is little risk of catastrophic failure with HRHBs during any interruption to the lubricant supply and compared to rolling bearings there is no fatigue failure. Therefore this hybrid design is useful at very high speeds.
机译:由于缺少足够的薄膜压力来实现滑动表面的完全分离,因此动压轴承在启动和停止期间会受到磨损。在较早的出版物中,我们的小组报告了一种新型的液力滚动混合轴承(HRHB)的开发,以克服液力轴承中的磨损问题。在该构造中,通过滚动轴承的间隙实现了在滚动轴承支撑状态和流体动力轴承支撑状态之间的操作模式的转变。在这里,我们报告了一种基于监视滚动轴承的保持架速度来确定HRHBs的运行模式的方法的开发。测量了保持架速度随轴速度的变化。还通过实验研究了外部负载和启动时间对保持架速度的影响。结果表明,保持架速度的变化反映了滚动轴承上载荷的变化以及HRHBs的工作模式。随着轴速度的增加,保持架速度的变化呈现三个阶段:增加阶段,下降阶段和静止阶段。在前两个阶段,HRHB在滚动轴承支撑状态下工作,而在静止阶段,HRHB在流体动力轴承支撑状态下工作。除了在启动和停止过程中没有磨损的特性外,与液压轴承相比,在任何润滑剂供应中断期间HRHBs都没有发生灾难性故障的风险,并且与滚动轴承相比,没有疲劳故障。因此,这种混合设计在非常高的速度下很有用。

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