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Monitoring of a thermoelectric power plant based on multivariate statistical process control

机译:基于多元统计过程控制的热电厂监控

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Thermoelectric power plants have critical units, such as the boiler and the turbine-generator, which are complex multivariate systems. These units exhibit non-stationary behavior and multiple operational modes that imply constant changes of set points of key performance variables. A methodology based on MSPC (Multivariate Statistical Process Control) techniques and PCA (Principal Component Analysis) is presented with an adaptive mean estimator that deals with frequent changes of set points, both for design and just in time monitoring. The proposed methodology is implemented in a thermoelectric power plant using a commercial PIMS (Process Information Management System) software suite. Experimental results illustrate and validate the proposition, its just-in-time implementation and usage.
机译:热电厂具有至关重要的单元,例如锅炉和涡轮发电机,它们是复杂的多元系统。这些单元表现出不稳定的行为和多种运行模式,这意味着关键性能变量的设定值会不断变化。提出了一种基于MSPC(多元统计过程控制)技术和PCA(主成分分析)的方法,该方法具有自适应均值估计器,该均值估计器可处理设定点的频繁变化,既用于设计,又用于实时监控。使用商业PIMS(过程信息管理系统)软件套件在热电厂中实施所提出的方法。实验结果说明并验证了该命题,其及时实施和用法。

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