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HYBRID ADAPTIVE ROTOR IMBALANCE VIBRATION CONTROL VIA PASSIVE AUTOBALANCER AND ACTIVE BEARING ACTUATION

机译:混合自适应转子不平衡振动控制通过无源自传扫描器和主动轴承致动

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Many researchers have explored the use of active bearings, such as non-contact Active Magnetic Bearings for example, to control imbalance vibration in rotor systems. This paper develops a new hybrid adaptive imbalance vibration control approach based on an active bearing augmented with a passive automatic balancing device (ABD) to enhance the balancing and vibration isolation capabilities. Essentially, an ABD or "autobalancer" consists of several freely moving eccentric balancing masses mounted on the rotor, which, at supercritical operating speeds, act to cancel the rotor's imbalance at steady-state. This "automatic balancing" phenomena occurs as a result of nonlinear dynamic interactions between the balancer and rotor wherein the balancer masses naturally synchronize with the rotor with appropriate phase to cancel the imbalance. Since the ABD acts directly on the rotor in the rotating frame, rotor whirl amplitudes are passively reduced without any forces transmitted between rotor and bearing. Therefore, this hybrid ABD/active bearing approach enables increased rotor balancing capability and reduced steady-state control power consumption. However, due to the inherent nonlinearity of the autobalancer, the potential for other, non-synchronous limit-cycle behavior exists. In such situations, the balancer masses do not reach their desired synchronous balanced steady-state equilibrium positions resulting in increased rotor vibration. To address this, a new adaptive active control algorithm for the rotor/bearing/ABD system is derived based on the Lyapunov approach which guarantees global asymptotic stability of the synchronous balanced condition. This approach enables the controller to cope with both the system nonlinearity introduced by the passive ABD and with the rotor imbalance uncertainty. Here, the controllability of system is established through an accessible distribution Lie bracket operational analysis. The simulation results demonstrate the advantages of the hybrid ABD/active bearing system. In particular, it is shown that the balanced equilibrium can be made globally attractive under the action of the adaptive bearing control law, and that the steady-state power levels are significantly reduced via the addition of the ABD. These findings are relevant to limited power applications such as in satellite reaction wheels or flywheel energy storage batteries.
机译:许多研究人员已经在转子系统探讨了采用主动轴承,例如非接触的电磁轴承,以控制振动不平衡。本文开发基于具有被动自动平衡装置(ABD),以提高平衡和振动隔离功能增强活性轴承一种新的混合自适应失衡振动控制方法。本质上,ABD或“自动平衡器”由几个自由移动安装在转子上,这在超临界操作速度,起到取消转子的不平衡在稳态偏心平衡质量。这个“自动平衡”现象发生是由于平衡器和转子,其中所述平衡器群众自然与适当的相位以消除不平衡的转子同步之间的非线性动态的相互作用的结果。由于ABD直接在旋转框架作用在转子上,转子旋转幅度被被动而不转子和轴承之间传输的任何力减小。因此,此混合动力车ABD /活性轴承方法使增加转子平衡能力和降低的稳态控制功耗。然而,由于自动平衡器的固有的非线性,对其他非同步极限周期行为存在的可能性。在这种情况下,平衡器群众没有达到它们的期望同步平衡稳态平衡位置从而增加了转子的振动。为了解决这个问题,对于转子/轴承/ ABD系统的新自适应有源控制算法导出基于所述Lyapunov方法保证了同步平衡状态的全局渐近稳定。这种方法使得控制器能够应付由无源ABD并与转子的不平衡不确定性引入的系统非线性两者。在这里,系统的可控性,通过可访问的分发李括号操作分析建立。仿真结果表明混合ABD /主动轴承系统的优点。特别地,示出的是,平衡的平衡可以自适应轴承控制律的作用下进行全局吸引,并且所述稳态功率电平经由添加ABD的显著降低。这些发现是相关的有限的功率应用,例如在卫星反作用轮或飞轮储能电池。

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