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An Active Vibration Control Strategy to Prevent Nonlinearly Coupled Rotor–Stator Whirl Responses in Multimode Rotor-Dynamic Systems

机译:一种主动振动控制策略,可防止多模转子动态系统中的非线性转子-转子涡旋响应

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摘要

This brief describes an active control method to prevent unwanted nonlinear vibration response modes of a rotor-dynamic system. Nonlinear stiffness of components that support or surround a machine rotor can cause a response branch that extends critical vibration (resonance) over a wide interval of rotational speeds. Within this interval, jump transitions between alternative low amplitude and high amplitude response modes become possible. This brief explains how such behavior can be eliminated by applying control forces to the rotor based on dynamic feedback of strains measured in the stator structure. An optimal model-based controller synthesis is considered that combines a Lur'e-type Lyapunov function with a quadratic cost measure to penalize controller gain and bandwidth. Results are presented for an experimental flexible rotor system where nonlinear rotor–stator interaction occurs through a bearing with radial clearance. An active magnetic bearing applies control forces to the rotor in a separate plane. The results show that the control technique can eliminate jump response modes and can significantly reduce mechanical stress associated with rub interaction of the rotor and stator. The influence of key parameters in the model and controller formulation is shown.
机译:本简介描述了一种主动控制方法,可防止转子动态系统出现不必要的非线性振动响应模式。支撑或围绕机器转子的组件的非线性刚度会导致响应分支,该响应分支会在较宽的转速范围内扩展临界振动(共振)。在此时间间隔内,可以在低振幅和高振幅响应模式之间进行跳变。本简介说明了如何根据定子结构中测得的应变的动态反馈,通过向转子施加控制力来消除这种现象。考虑了基于最优模型的控制器综合,其将Lur'e型Lyapunov函数与二次成本度量相结合,以惩罚控制器增益和带宽。给出了实验性柔性转子系统的结果,其中通过具有径向游隙的轴承发生非线性的转子-定子相互作用。主动磁轴承在单独的平面中将控制力施加到转子。结果表明,该控制技术可以消除跳跃响应模式,并可以显着降低与转子和定子的摩擦相互作用相关的机械应力。显示了关键参数在模型和控制器公式中的影响。

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