A nonlinear transmissibility function-based diagnosis approach for multi-disks rub-impact faults in rotor systems with nonlinear supports

IF 8.9 1区 工程技术 Q1 ENGINEERING, MECHANICAL Mechanical Systems and Signal Processing Pub Date : 2025-04-01 Epub Date: 2025-02-05 DOI:10.1016/j.ymssp.2025.112418
Quankun Li , Heyu Hu , Mingfu Liao , Xingjian Jing
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Abstract

For diagnosing rub-impact faults in rotor systems, numerous advanced methods leveraging nonlinear vibration features such as Frequency Response Function (FRF), Output Frequency Response (OFR), and Transmissibility Function (TF) have been developed and implemented. Addressing limitations in existing methods, such as the need for reference data from healthy rotors, neglect of nonlinear supports, and focus on single-disk rub-impact faults, this paper introduces a novel systematic approach using nonlinear TF-based indexes. Initially, a comprehensive nonlinear rotor dynamic model is established, incorporating unbalance forces, rub-impact forces, and nonlinear support forces. The nonlinear TF is then defined through nonlinear output spectra. By exciting the rotor system four times with varying unbalance force magnitudes and focusing on a single-disk rotor sub-model, two fault features based on nonlinear TFs and rub-impact fault forces are identified. This innovative approach, featuring sensitive fault indexes and detailed operational procedures, is validated through extensive numerical studies and experimental comparisons on a lab rotor system with multi-disk rub-impact faults and nonlinear supports. The study presents a groundbreaking and effective method for detecting and localizing multi-disk rub-impact faults in rotor systems, even with nonlinear supports.
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基于非线性传递函数的转子系统多盘碰摩故障诊断方法
为了诊断转子系统的碰摩故障,许多先进的方法利用非线性振动特征,如频响函数(FRF),输出频响(OFR)和传递函数(TF)已经开发和实现。针对现有方法的局限性,例如需要来自健康转子的参考数据,忽略非线性支撑,以及关注单盘摩擦故障,本文介绍了一种基于非线性tf指标的新颖系统方法。首先,建立了综合考虑不平衡力、摩碰力和非线性支撑力的转子非线性动力学模型。然后通过非线性输出谱来定义非线性TF。通过对转子系统进行四次不同不平衡力大小的激励,并以单盘转子子模型为研究对象,识别出基于非线性TFs和摩擦碰撞故障力的两种故障特征。这种创新的方法,具有敏感的故障指标和详细的操作程序,通过广泛的数值研究和实验比较,在一个多盘摩擦碰撞故障和非线性支撑的实验室转子系统上得到了验证。该研究提出了一种突破性的、有效的转子系统多盘碰摩故障检测和定位方法,即使在非线性支承下也是如此。
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来源期刊
Mechanical Systems and Signal Processing
Mechanical Systems and Signal Processing 工程技术-工程:机械
CiteScore
14.80
自引率
13.10%
发文量
1183
审稿时长
5.4 months
期刊介绍: Journal Name: Mechanical Systems and Signal Processing (MSSP) Interdisciplinary Focus: Mechanical, Aerospace, and Civil Engineering Purpose:Reporting scientific advancements of the highest quality Arising from new techniques in sensing, instrumentation, signal processing, modelling, and control of dynamic systems
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