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Influence of Wall Slip on the Dynamic Properties of a Rotor-Bearing System

机译:壁滑对转子轴承系统动力特性的影响

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摘要

Based on the limiting shear stress model, we used a multilinearity finite element algorithm and quadratic programming technique to study the influence of wall slip (boundary slip) on the operation stability of a rigid rotor-bearing system. The shaft surface is designed as a no-slip surface. The bearing sleeve surface is designed as three types of surfaces: (a) no slip is allowed (traditional no-slip rotor-bearing system), (b) the entire sleeve surface has the same slip property (the homogeneous slip bearing), and (c) the sleeve surface is optimized to have an optimized slip zone (the optimized slip bearing). It is found that if the sleeve surface has a single slip property, the wall slip generally reduces the system operation stability, as well as the load-carrying capacity. However, if the sleeve surface is designed as the optimized slip surface, the wall slip enhances the system operation stability as well as the load-carrying capacity. Furthermore, the smaller the surface limiting shear stress, the better the dynamic stability and the higher the load-carrying capacity.
机译:基于极限剪应力模型,我们使用多线性有限元算法和二次规划技术来研究壁面滑移(边界滑移)对刚性转子-轴承系统的运行稳定性的影响。轴表面设计为防滑表面。轴承套表面设计为三种类型的表面:(a)不允许打滑(传统的不打滑转子轴承系统),(b)整个套表面具有相同的打滑性能(均质的滑动轴承),以及(c)对套筒表面进行优化,使其具有优化的滑动区域(优化的滑动轴承)。已经发现,如果套筒表面具有单一的滑移特性,则壁滑通常会降低系统的操作稳定性以及承载能力。但是,如果将套筒表面设计为优化的滑移表面,则壁滑移会增强系统的运行稳定性以及承载能力。此外,表面极限剪切应力越小,动态稳定性越好,承载能力越高。

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