• ISA transactions · Jul 2005

    An improved PCA method with application to boiler leak detection.

    • Xi Sun, Horacio J Marquez, Tongwen Chen, and Muhammad Riaz.
    • Department of Electrical and Computer Engineering, University of Alberta, Edmonton, Alberta, Canada T6G 2G7.
    • ISA Trans. 2005 Jul 1; 44 (3): 379-97.

    AbstractPrincipal component analysis (PCA) is a popular fault detection technique. It has been widely used in process industries, especially in the chemical industry. In industrial applications, achieving a sensitive system capable of detecting incipient faults, which maintains the false alarm rate to a minimum, is a crucial issue. Although a lot of research has been focused on these issues for PCA-based fault detection and diagnosis methods, sensitivity of the fault detection scheme versus false alarm rate continues to be an important issue. In this paper, an improved PCA method is proposed to address this problem. In this method, a new data preprocessing scheme and a new fault detection scheme designed for Hotelling's T2 as well as the squared prediction error are developed. A dynamic PCA model is also developed for boiler leak detection. This new method is applied to boiler water/steam leak detection with real data from Syncrude Canada's utility plant in Fort McMurray, Canada. Our results demonstrate that the proposed method can effectively reduce false alarm rate, provide effective and correct leak alarms, and give early warning to operators.

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