首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Rotor vibration with auxiliary bearing contact in magnetic bearing systems - Part 1: synchronous dynamics
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Rotor vibration with auxiliary bearing contact in magnetic bearing systems - Part 1: synchronous dynamics

机译:电磁轴承系统中带有辅助轴承触点的转子振动-第1部分:同步动力学

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摘要

Magnetic bearing systems incorporate auxiliary bearings to prevent physical interaction between rotor and stator laminations. Rotor/auxiliary bearing contacts may occur when a magnetic bearing still retains a full control capability. To actively return the rotor to a non-contacting state it is essential to determine the manner in which contact events affect the rotor vibration signals used for position control. An analytical procedure is used to assess the nature of rotor contact modes under idealized contacts. Non-linearities arising from contact and magnetic bearing forces are then included in simulation studies involving rigid and flexible rotors to predict rotor response and evaluate rotor synchronous vibration components. An experimental flexible rotor/magnetic bearing facility is also used to validate the predictions. It is shown that changes in synchronous vibration amplitude and phase induced by contact events causes existing controllers to be ineffective in attenuating rotor displacements. These findings are used in Part 2 of the paper as a foundation for the design of new controllers that are able to recover rotor position control under a range of contact cases.
机译:电磁轴承系统包含辅助轴承,以防止转子和定子叠片之间的物理相互作用。当电磁轴承仍保持完全控制能力时,可能会发生转子/辅助轴承接触。为了使转子主动返回到非接触状态,必须确定接触事件影响用于位置控制的转子振动信号的方式。分析程序用于评估理想触点下转子触点模式的性质。然后,在涉及刚性和柔性转子的仿真研究中包括了由接触力和磁轴承力引起的非线性,以预测转子响应并评估转子同步振动分量。实验性挠性转子/电磁轴承装置也用于验证预测。结果表明,由接触事件引起的同步振动幅度和相位的变化会导致现有的控制器在衰减转子位移方面无效。这些发现将在本文的第2部分中用作设计新控制器的基础,这些控制器能够在一系列接触情况下恢复转子位置控制。

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