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Feature extraction and early warning of agglomeration in fluidized bed reactors based on an acoustic approach

机译:基于声学方法的流化床反应器结块特征提取与预警

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The potential use of audible acoustic emissions for monitoring particle agglomeration in ethylene polymerization fluidized bed reactors was investigated by the authors and reported in this paper. The offset in the power spectral centroid between normal and agglomeration signals was compared, and the energy distribution of the acoustic signals was confirmed to change under agglomeration conditions. On this basis, the acoustic signals were decomposed by wavelet packet decomposition (WPD) and the energy ratios of every sub-band were set as the voiceprint. Subsequently, principal component analysis (PCA) was introduced to reduce the dimensionality of the feature vector. Furthermore, based on normal signals, an agglomeration warning model could be created by support vector data description (SVDD) to avoid the decrease in description accuracy caused by the lack of agglomeration samples. Finally, a proper alarm rate (AR) parameter was designed to solve the problem of false alarms caused by the lack of repeatability and haphazardness of agglomeration in polymerization. According to the experimental results in a pilot plant, the proposed early-warning approach for agglomeration could Provide a warning 20-50 min in advance of the traditional pressure and temperature monitoring methods. (C) 2015 Elsevier B.V. All rights reserved.
机译:作者研究了可听声发射在乙烯聚合流化床反应器中监测颗粒团聚的潜在用途,并在本文中进行了报道。比较了正常信号和团聚信号之间的功率谱质心偏移,并确认了声信号的能量分布在团聚条件下发生了变化。在此基础上,通过小波包分解(WPD)分解声信号,并将每个子带的能量比设置为声纹。随后,引入主成分分析(PCA)以减少特征向量的维数。此外,基于正常信号,可以通过支持向量数据描述(SVDD)创建聚结警告模型,以避免由于聚结样本不足而导致描述精度下降。最后,设计了合适的报警率(AR)参数,以解决由于聚合反应缺乏可重复性和附聚性而导致的错误报警问题。根据中试工厂的实验结果,建议的结块预警方法可以比传统的压力和温度监测方法提前20-50分钟提供警告。 (C)2015 Elsevier B.V.保留所有权利。

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