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Application of signal processing technology based on symbolic time series analysis to rotor broken fault detection

机译:基于符号时间序列分析的信号处理技术在转子断裂故障检测中的应用

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An improved method of motor fault detection based on symbolic time series analysis is proposed, and the method adaptively partition off the region which has the most symbols in the symbolic series into two new regions. The method makes that the regions with more information are assigned more symbols relatively but those with sparse information are assigned fewer symbols, which enhances the sensitive degree of symbols to the signal. Laboratory experiments of fault diagnosis of broken rotor for inductive motor show that comparing with the uniform partition, the new method is more sensitive to the system and also owns a stronger robustness and a better reliability.
机译:提出了一种改进的基于符号时间序列分析的电机故障检测方法,该方法将符号序列中符号最多的区域自适应地划分为两个新区域。该方法使得信息较多的区域被分配相对较多的符号,而信息稀疏的区域被分配较少的符号,从而提高了符号对信号的敏感度。实验表明,与均匀划分相比,该方法对系统更敏感,并且具有更强的鲁棒性和更好的可靠性。

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