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首页> 外文期刊>Sadhana: Academy Proceedings in Engineering Science >Dual flexible rotor system with active magnetic bearings for unbalance and coupling misalignment faults analysis
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Dual flexible rotor system with active magnetic bearings for unbalance and coupling misalignment faults analysis

机译:双柔性转子系统,具有主动磁轴承,用于不平衡和耦合未对准故障分析

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摘要

Rotating machines are the backbone of the present industrial world. Early fault detection and conditioning of these machines are primary concern of the researchers associated in this field. There are various faults (assembly error, coupling misalignment, looseness, imbalance, rotor crack, etc.) that cause malfunction of rotating machinery. Imbalance is one of the oldest problem and still challenging to perfectly balance the rotor. Imbalance leads to another inherent fault, i.e., coupling misalignment, especially in dual rotor or rotor train system. Imbalance and misalignment cause excessive vibration in the system that tends to shatter failure of the critical components of rotating machinery. In this article, active magnetic bearings (AMBs) are utilized to suppress the excessive vibration generated due to imbalance and misalignment. To regulate the controlling current of AMB a proportional integral derivative (PID) feedback controller is employed. A quantification technique is suggested to evaluate the tuned AMB characteristics along with imbalance and coupling misalignment dynamic parameters. A finite element method (FEM) modelling with high-frequency reduction scheme is utilized to acquire reduced system equations of motion. There are two advantages of employing condensation scheme, first, it reduces the number of sensors required and second, only linear (practically measurable) degrees of freedom are present in equations of motion derived. A SIMULINK (TM) code is prepared to solve a reduced linear differential equation. The time series feedback signals (current and displacement) obtained are transformed into a frequency series utilizing Fast Fourier Transformation (FFT) and utilized in developed algorithm. To establish the accuracy and effectiveness of the methodology, the estimated parameters are evaluated under two different frequency bands against measurement and modelling error (5% variation in mass of the disc and bearing characteristic parameters).
机译:旋转机器是当前工业世界的骨干。这些机器的早期故障检测和调节是该领域相关联的研究人员的主要关注点。导致旋转机械故障的故障有各种故障(装配误差,耦合错位,松动,不平衡,转子裂纹等)。不平衡是最古老的问题之一,并且仍然挑战完全平衡转子。不平衡导致另一个固有的故障,即耦合未对准,尤其是双转子或转子列车系统。不平衡和未对准导致系统中过度振动,倾向于粉碎旋转机械的关键部件失效。在本文中,利用主动磁轴承(AMB)来抑制由于不平衡和未对准而产生的过度振动。为了调节AMB的控制电流,采用比例积分衍生物(PID)反馈控制器。建议一种量化技术来评估调谐的AMB特性以及不平衡和耦合未对准动态参数。利用具有高频率降低方案的有限元方法(FEM)建模来获取减少的运动运动方程。采用冷凝方案有两个优点,首先,它减少了所需的传感器数量和第二,仅线性(实际可测量)自由度存在于运动的方程中存在。准备求解线性微分方程的Simulink(TM)代码。获得的时间序列反馈信号(电流和位移)被转换为利用快速傅里叶变换(FFT)并在发达的算法中使用的频率序列。为了确定方法的准确性和有效性,估计参数在两种不同的频带下进行测量和建模误差(光盘质量的5%变化和轴承特性参数)。

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