Robust Dynamic Balancing of Dual Rotor-AMB System Through Virtual Trial Unbalances as Low and High Frequency Magnetic Excitation

IF 1.8 Q2 ENGINEERING, MULTIDISCIPLINARY
Gyan Ranjan, R. Tiwari, H. Nemade
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引用次数: 1

Abstract

The present work focuses on in-situ residual unbalance estimation of the dual rotor system with implementation of Active Magnetic Bearing (AMB) as a controller and exciter. The excessive vibration generated due to the presence of residual unbalances limits the operating speed of the system. The compact structure of the dual rotor system provides constraints to the conventional balancing procedure that requires manual addition of the trial unbalances for balancing. In order to overcome the difficulty in balancing of dual rotor system, an identification algorithm based on Modified Influence Coefficient Method (MICM) is developed for the simultaneous estimation of residual unbalances in both inner and outer rotors with generation of virtual trial unbalances as magnetic excitation through AMB. The controlling action of AMB attenuates the vibrational response of the system within the required limit and allow the safe operation of the system in the presence of rotor faults and additional excitations. The vibrational responses of the system at the limited locations and the magnitude and phase of the virtual trial unbalances are only required in the MICM for the estimation of unbalances. To numerically illustrate the present methodology, the displacement response are obtained from the developed finite element model of the dual rotor system with discrete disc unbalances and randomly distributed shaft. The robustness of the algorithm in estimation of residual unbalances is verified with the addition of different percentage of measurement noises. After balancing, the dual rotor system is found to traverse its critical speed with less vibrational response.
基于低频和高频磁激励的虚拟试验不平衡双转子- amb系统鲁棒动平衡
本文主要研究以主动磁轴承(AMB)作为控制器和励磁器的双转子系统的原位剩余不平衡估计。由于存在残余不平衡而产生的过度振动限制了系统的运行速度。双转子系统的紧凑结构为传统的平衡过程提供了约束,传统的平衡过程需要手动添加试验不平衡进行平衡。为了克服双转子系统的平衡困难,提出了一种基于修正影响系数法(修正影响系数法,MICM)的内转子和外转子剩余不平衡辨识算法,并通过磁激励产生虚拟试验不平衡。AMB的控制作用将系统的振动响应衰减到要求的范围内,并允许系统在转子故障和附加激励存在的情况下安全运行。在MICM中,只需要系统在有限位置的振动响应以及虚拟试验不平衡的大小和相位来估计不平衡。为了在数值上说明该方法,建立了具有离散盘不平衡和随机分布轴的双转子系统的有限元模型,得到了系统的位移响应。通过加入不同比例的测量噪声,验证了该算法在残差不平衡估计中的鲁棒性。平衡后,双转子系统能以较小的振动响应穿越临界转速。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.20
自引率
13.60%
发文量
34
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