基于集成观测器迭代学习策略的轧机主传动系统故障检测与识别

Ruicheng Zhang, Zhiwen Li, Weizheng Liang
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引用次数: 0

摘要

本文研究了含外部扰动的轧机主传动系统的多故障检测、隔离和重构问题。考虑轧辊与被轧件之间的非线性摩擦阻尼,建立了轧机主传动系统的非线性数学模型。针对该系统存在未知外部干扰的情况,提出了一种基于观测器的综合故障诊断方案。提出的方案分为两部分。首先设计了一组滑模观测器用于系统故障检测,并基于观测器冗余和广义残差集理论提出了故障隔离准则来揭示故障源;第二阶段,结合迭代学习算法,构造迭代学习未知输入观测器,实现故障信号的准确估计。与现有的故障估计方法不同,本文设计的迭代学习未知输入观测器利用前一次迭代的状态估计误差来估计当前迭代周期内的故障信号。采用[公式:见文]综合设计系统观测器,保证了故障诊断的鲁棒性。利用李亚普诺夫理论和线性矩阵不等式证明了所提观测器的收敛性。通过对1780mm热连轧机的仿真研究,对所提出的方案进行了验证。仿真结果表明,滑模观测器方法能准确地检测到主传动系统的故障,并能准确地隔离故障。迭代学习-未知输入观测器方法的故障重构误差最小(比扩展状态观测器小99.87%,比未知输入观测器小99.77%),实现了准确的故障信号跟踪。
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Fault detection and identification for rolling mill main drive system based on integrated observer under iterative learning strategy
In this article, the problem of multiple fault detection, isolation and reconfiguration of the rolling mill main drive system containing external disturbances is investigated. Considering the nonlinear frictional damping between the rolls and the rolled parts, a nonlinear mathematical model of the main drive system of the mill is established. A comprehensive fault diagnosis scheme based on observer is addressed for this system subjected to unknown external interference. The proposed scheme is divided into two parts. In the first stage, a set of sliding mode observers is designed for system fault detection, and a fault isolation criterion is proposed based on observer redundancy and generalised residual set theory to reveal the fault source. In the second stage, combined with the iterative learning algorithm, an iterative learning-unknown input observer is constructed to realise the accurate estimation of the fault signal. Unlike the existing fault estimation methods, the iterative learning-unknown input observer designed in this article uses the state estimation error of the previous iteration to estimate the fault signal in the current iteration period. Using [Formula: see text] synthesis to design observers for the system will guarantee fault diagnosis robustness. The Lyapunov theory and linear matrix inequality are introduced to prove the convergence of the proposed observer. The simulation study of a 1780-mm hot strip mill evaluates the proposed scheme. Simulation results demonstrate that the sliding mode observer approach can detect faults in the main drive system and isolate faults accurately. In contrast, the iterative learning-unknown input observer method has the lowest fault reconfiguration error (99.87% smaller than the extended state observer, 99.77% smaller than the unknown input observer) and achieves accurate fault signal tracking.
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来源期刊
CiteScore
3.50
自引率
18.80%
发文量
99
审稿时长
4.2 months
期刊介绍: Systems and control studies provide a unifying framework for a wide range of engineering disciplines and industrial applications. The Journal of Systems and Control Engineering refleSystems and control studies provide a unifying framework for a wide range of engineering disciplines and industrial applications. The Journal of Systems and Control Engineering reflects this diversity by giving prominence to experimental application and industrial studies. "It is clear from the feedback we receive that the Journal is now recognised as one of the leaders in its field. We are particularly interested in highlighting experimental applications and industrial studies, but also new theoretical developments which are likely to provide the foundation for future applications. In 2009, we launched a new Series of "Forward Look" papers written by leading researchers and practitioners. These short articles are intended to be provocative and help to set the agenda for future developments. We continue to strive for fast decision times and minimum delays in the production processes." Professor Cliff Burrows - University of Bath, UK This journal is a member of the Committee on Publication Ethics (COPE).cts this diversity by giving prominence to experimental application and industrial studies.
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