首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Effects of eccentricity and vibration response on high-speed rigid rotor supported by hybrid foil-magnetic bearing
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Effects of eccentricity and vibration response on high-speed rigid rotor supported by hybrid foil-magnetic bearing

机译:偏心和振动响应对混合箔-磁轴承支撑的高速刚性转子的影响

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摘要

A hybrid foil-magnetic bearing (HFMB) consists of an air foil bearing (AFB) and an active magnetic bearing (AMB). The HFMB, inherently proposed as a backup bearing for an AMB, has many advantages, such as good controllability and the ability to exhibit preload sharing with the two types of bearings (i.e., the AFB and AMB) in high-speed turbomachinery. However, because the bearing has a limited clearance, the eccentric position of the rotor affects its stability and the reliability parameters of the AFBs such as the initial preload rub. In this study, a rigid rotor supported by an HFMB was operated at speeds of up to 18kr/min and was tested using a proportional-derivative control algorithm, in order to reduce the vibration amplitude. In addition, to elucidate the effect of the initial eccentric position of the rotor, the control algorithm was started from the initial position of the rotor (X: from -100 to 100 mu m and Y: from -80 to 200 mu m) using a constant gain value. When the HFMB was active, the magnetic control force was remarkably effective in reducing the subsynchronous vibration of the rotor supported by the HFMB. Eccentricities of 0.2-0.5 corresponded to appropriate rotor positions for the hybrid bearing, and the corresponding load distribution of the AFB was found to be the optimal one. In addition, the proportional-derivative control gain was not very high. The performance of the bearing could be improved further by controlling the eccentricity. An HFMB was tested experimentally, and it was verified that it is possible to determine the effective load carrying capacity for a specific load distribution of the AFB.
机译:混合式箔片电磁轴承(HFMB)由空气箔片轴承(AFB)和主动式磁性轴承(AMB)组成。固有地被提议作为AMB的备用轴承的HFMB具有许多优点,例如良好的可控性以及能够与高速涡轮机械中的两种轴承(即AFB和AMB)共享预载的能力。但是,由于轴承的游隙有限,因此转子的偏心位置会影响其稳定性和AFB的可靠性参数,例如初始预载荷摩擦。在这项研究中,由HFMB支撑的刚性转子以高达18kr / min的速度运行,并使用比例微分控制算法进行了测试,以减小振动幅度。另外,为了阐明转子初始偏心位置的影响,控制算法从转子的初始位置(X:-100至100μm,Y:-80至200μm)开始,恒定的增益值。当HFMB处于活动状态时,磁控制力在减少由HFMB支撑的转子的次同步振动方面非常有效。 0.2-0.5的偏心率对应于混合轴承的合适转子位置,并且发现AFB的相应载荷分布是最佳的。另外,比例微分控制增益不是很高。通过控制偏心率可以进一步改善轴承的性能。对HFMB进行了实验测试,并证实可以确定AFB特定负载分布的有效承载能力。

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