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Pattern recognition approach for acoustic emission burst detection in a gearbox under different operating conditions

机译:不同操作条件下齿轮箱中声发射突发检测的模式识别方法

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摘要

Diverse machines in the mining, energy, and other industrial sectors are subject to variable operating conditions (OCs) such as rotational speed and load. Therefore, the condition monitoring techniques must be adapted to face this scenario. Within these techniques, the acoustic emission (AE) technology has been successfully used as a technique for condition monitoring of components such as gears and bearings. An AE analysis involves the detection of transients within the signals, which are called AE bursts. Traditional methods for AE burst detection are based on the definition of threshold values. When the machine under study works under variable rotational speed and load, threshold-based methods could produce inadequate results due to the influence of these OCs on the AE. This paper presents a novel burst detection method based on pattern recognition using an artificial neural network (ANN) for classification. The results of the method were compared to an adaptive threshold method. Experimental data were measured in a planetary gearbox test rig under different OCs. The results showed that both methods perform similarly when signals measured under constant OCs are considered. However, when signals are measured under different OCs, the ANN method performs better. Thus, the comparative analysis showed the good potential of the approach to improve an AE analysis of variable speed and/or load machines.
机译:采矿,能源和其他工业部门的各种机器受到可变操作条件(OCS),如转速和负载。因此,必须调整条件监测技术以面对这种情况。在这些技术中,声发射(AE)技术已被成功用作用于调节诸如齿轮和轴承的部件的条件监测技术。 AE分析涉及检测在信号中的瞬态,称为AE突发。用于AE突发检测的传统方法基于阈值的定义。当在可变的转速和负载下的研究机器工作时,基于阈值的方法可以产生由于这些OC在AE上的影响而产生的结果不足。本文介绍了一种基于使用人工神经网络(ANN)进行分类的模式识别的新型突发检测方法。将该方法的结果与自适应阈值方法进行比较。在不同OC的行星齿轮箱试验台中测量实验数据。结果表明,当考虑在恒定OC的信号时,两种方法类似地执行。但是,当在不同的OC下测量信号时,ANN方法更好地执行。因此,比较分析显示了改善可变速度和/或装载机器的AE分析的方法的良好潜力。

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