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Monitoring method of slurry quality in wet flue gas desulfurization system based on fuzzy C-means clustering

机译:基于模糊C均值聚类的湿法烟气脱硫系统浆液质量监测方法

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In this paper, a method of slurry quality monitoring and diagnosis in Wet Flue Gas Desulfurization(WFGD) system was proposed based on feature extraction of slurry quality and Fuzzy C-means(FCM) clustering. Focusing on the WFGD system of a 600 MW unit in a certain power plant, a new index for slurry quality monitoring was put forward. And clustering centers could be obtained to be the standard modes for slurry quality identification by adopting FCM to perform clustering analysis, in which the desulfurization efficiency and pH were regarded as feature information. Slurry quality diagnosis could be realized eventually by calculating the membership between the unknown samples and the standard modes of slurry quality. Furthermore, a fuzzy quantitative monitoring index was presented to quantitatively monitor the slurry quality state during its actual operation according to the theory of fuzzy membership. On the basis of diagnostic analysis of the field operating data, it demonstrates that the method raided in this dissertation can monitor the slurry quality state efficiently, providing foundation for operation adjustment.
机译:基于泥浆质量特征提取和模糊C-均值(FCM)聚类,提出了湿法烟气脱硫(WFGD)系统中泥浆质量监测与诊断的方法。针对某电厂600MW机组的WFGD系统,提出了一种新的浆液质量监测指标。采用FCM进行聚类分析,可以将聚类中心作为渣浆质量鉴定的标准模式,其中以脱硫效率和pH为特征信息。通过计算未知样品与标准浆液模式之间的隶属关系,最终可以实现浆液质量诊断。此外,根据模糊隶属度理论,提出了一种模糊定量监测指标,对泥浆实际运行过程中的质量状态进行定量监测。在对现场运行数据进行诊断分析的基础上,证明了本文提出的方法可以有效地监测矿浆质量状态,为运行调整提供依据。

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