基于声发射的工业中试设备早期故障检测

M. Elmaleeh, N. Saad, M. Awan
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引用次数: 1

摘要

在过去的几年中,已经提出了许多用于工业设备故障检测和诊断的状态监测技术和识别算法。电动机是几乎所有工厂机械中常用的元件之一。一旦机器出现故障,它们就会引起故障。因此,需要先进有效的状态监测技术来监测和发现早期的运动问题。这避免了灾难性的机器故障和昂贵的计划外停机。本文建立了声发射(AE)监测系统。讨论了一种基于时频域分析的化工中试装置电机声发射信号处理方法。开发了一种实时测量系统。它利用MatLAB来处理和分析数据,以提供有关被监控过程的有价值的信息。
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Incipient fault detection of industrial pilot plant machinery via acoustic emission
Numerous condition monitoring techniques and identification algorithms for detection and diagnosis of faults in industrial plants have been proposed for the past few years. Motors are one of the common used elements in almost all plant machinery. They cause the machine failure upon getting faulty. Therefore advance and effective condition monitoring techniques are required to monitor and detect the motor problems at incipient stages. This avoids catastrophic machine failure and costly unplanned shutdown. In this paper the acoustic emission (AE) monitoring system is established. It discusses a method based on time and frequency domain analysis of AE signals acquired from motors used in chemical process pilot plant. A real time measurement system is developed. It utilizes MatLAB to process and analyze the data to provide valuable information regarding the process being monitored.
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