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Multivariate Statistical Process Monitoring and Control: Recent Developments and Applications to Chemical Industry

机译:多元统计过程监控:化学工业的最新发展和应用

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摘要

Multivariate statistical process monitoring and control (MSPM&C) methods for chemical process monitoring with statistical projection techniques such as principal component analysis (PCA) and partial least squares (PLS) are surveyed in this paper. The four-step procedure of performing MSPM&C for chemical process, modeling of processes, detecting abnormal events or faults, identifying the variable(s) responsible for the faults and diagnosing the source cause for the abnormal behavior, is analyzed. Several main research directions of MSPM&C reported in the literature are discussed, such as multi-way principal component analysis (MPCA) for batch process, statistical monitoring and control for nonlinear process, dynamic PCA and dynamic PLS, and on-line quality control by inferential models. Industrial applications of MSPM&C to several typical chemical processes, such as chemical reactor, distillation column, polymerization process, petroleum refinery units, are summarized. Finally, some concluding remarks and future considerations are made.
机译:本文对采用统计投影技术(例如主成分分析(PCA)和偏最小二乘(PLS))的化学过程监测的多元统计过程监测和控制(MSPM&C)方法进行了调查。分析了执行化学过程的MSPM&C,过程建模,检测异常事件或故障,识别造成故障的变量以及诊断异常行为的根本原因的四步过程。讨论了文献中报道的MSPM&C的几个主要研究方向,例如批处理的多路主成分分析(MPCA),非线性过程的统计监视和控制,动态PCA和动态PLS以及通过推理进行的在线质量控制楷模。总结了MSPM&C在几种典型化学过程中的工业应用,例如化学反应器,蒸馏塔,聚合过程,炼油装置。最后,作了一些总结性总结和今后的考虑。

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