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Multi-Sensor Fusion-Based Permanent Magnet Demagnetization Detection in Permanent Magnet Synchronous Machines

机译:永磁同步电机中基于多传感器融合的永磁体退磁检测

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摘要

When permanent magnet (PM) demagnetization in a PM synchronous machine (PMSM) occurs, the demagnetization characteristic information is usually coupled with other characteristics of the PMSM which may demonstrate similar features. Therefore, it is difficult to accurately detect the demagnetization by monitoring only one parameter. This paper explores the use of multi-sensor information, namely, acoustic noise and torque, for demagnetization detection through the information fusion technique. The acoustic noise and torque information are processed and analyzed using wavelet transforms for filtering and extracting features. Bayesian network-based multi-sensor information fusion is then proposed to detect the demagnetization ratio from the extracted features. The proposed approach is experimentally verified on a laboratory PMSM and compared with single-sensor dection methods.
机译:当永磁同步电机(PMSM)中发生永磁体(PM)退磁时,退磁特性信息通常与PMSM的其他特性(可能表现出相似的特性)结合在一起。因此,仅通过监视一个参数就难以准确地检测出退磁。本文探讨了通过信息融合技术将多传感器信息(即声噪声和扭矩)用于退磁检测的方法。使用小波变换对声学噪声和扭矩信息进行处理和分析,以过滤和提取特征。然后提出基于贝叶斯网络的多传感器信息融合算法,以从提取的特征中检测出退磁率。该方法在实验室PMSM上进行了实验验证,并与单传感器检测方法进行了比较。

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