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Componential coding in the condition monitoring of electrical machines Part 2: application to a conventional machine and a novel machine

机译:电机状态监测中的成分编码第2部分:传统机器和新机器的应用

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摘要

This paper (Part 2) presents the practical application of componential coding, the principles of which were described in the accompanying Part 1 paper. Four major issues are addressed, including optimization of the neural network, assessment of the anomaly detection results, development of diagnostic approaches (based on the reconstruction error) and also benchmarking of componential coding with other techniques (including waveform measures, Fourier-based signal reconstruction and principal component analysis). This is achieved by applying componential coding to the data monitored from both a conventional induction motor and from a novel transverse flux motor. The results reveal that machine condition monitoring using componential coding is not only capable of detecting and then diagnosing anomalies but it also outperforms other conventional techniques in that it is able to separate very small and localized anomalies.
机译:本文(第2部分)介绍了部分编码的实际应用,其原理在随附的第1部分论文中进行了描述。解决了四个主要问题,包括神经网络的优化,异常检测结果的评估,诊断方法的开发(基于重构误差)以及使用其他技术(包括波形测量,基于傅立叶的信号重构)对部分编码进行基准测试和主成分分析)。这是通过对从常规感应电动机和新型横向磁通电动机监测到的数据应用分量编码来实现的。结果表明,使用分量编码的机器状态监视不仅能够检测并诊断异常,而且在能够分离非常小的和局部的异常方面也优于其他常规技术。

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