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Study on PID tuning strategy based on dynamic stiffness for radial active magnetic bearing

机译:基于径向主动磁轴承动态刚度的PID调谐策略研究

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摘要

The development of industry technology requires magnetic bearings to work in high speed conditions. However, the current stiffness and displacement stiffness of the magnetic bearing will decrease significantly due to the consequent eddy current effect, and that decrease will make the system unstable and even result in the rotor drop and instrument damage. Therefore, the traditional Proportional-Integral-Derivative (PID) method based on constant stiffness is not adaptable for high speed conditions. This paper proposes a PID parameters tuning strategy based on dynamic stiffness for the radial active magnetic bearing (RAMS). The dynamic stiffness model under eddy current effect is established by analyzing the equivalent magnetic circuit model in which parameters are frequency-dependent. The PID parameters tuning method for RAMB control system including dynamic stiffness model is put forward according to the characteristic equation and Routh-Hurwitz criterion. Different PID parameters are set in simulations and several corresponding experiments are conducted. Satisfactory control effects consistent with the theoretical analysis are obtained and thus the proposed PID tuning strategy is verified to be good. Simulations and experiments in this paper provide theoretical guidance for the design of controller parameters and have research significance for structural optimization of RAMB.
机译:行业技术的发展需要磁轴承在高速条件下工作。然而,由于随之而来的涡流效应,磁轴承的电流刚度和位移刚度将显着降低,并且减少将使系统不稳定,甚至导致转子下降和仪器损坏。因此,基于恒定刚度的传统成比例 - 积分衍生物(PID)方法不适合高速条件。本文提出了一种基于动态刚度的PID参数调谐策略,用于径向主动磁轴承(RAM)。通过分析参数依赖的等效磁路模型来建立涡流效果下的动态刚度模型。根据特征方程和Routh-Hurwitz标准提出了包括动态刚度模型的RAMB控制系统的PID参数调整方法。在模拟中设置不同的PID参数,并进行几个相应的实验。获得了与理论分析一致的令人满意的控制效果,因此验证了所提出的PID调整策略是好的。本文的仿真和实验为控制器参数的设计提供了理论指导,对兰布的结构优化具有研究意义。

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