PROCESS PLANT TRIP OR PERTURBATION PREVENTION

Systems and methods for simultaneously analyzing time-series and dominant frequency data from both a process domain and an electrical domain of a facility, such as an industrial plant, to detect instances of deviation from optimal, normal, or other predefined process conditions or electrical trips....

Ausführliche Beschreibung

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Bibliographische Detailangaben
Hauptverfasser: LI, Chennan, Khosh, Mostafa Parham, Iftikhar, Babar, Bickel, Jon, Carr, Lanyon, Abd-Elgaber Mostafa, Mohamed Samir
Format: Patent
Sprache:eng ; fre ; ger
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Beschreibung
Zusammenfassung:Systems and methods for simultaneously analyzing time-series and dominant frequency data from both a process domain and an electrical domain of a facility, such as an industrial plant, to detect instances of deviation from optimal, normal, or other predefined process conditions or electrical trips. Detecting when changes in frequencies occur in the time-series data creates a time-series of the changes in dominant frequencies. A data analysis server detects instances of deviation from the predefined process conditions or electrical trips by detecting one or more of correlations, patterns, clusters, and the like in the rates of change. The data analysis server employs one or more of statistical analyses, data mining, machine learning, deep neural networks, parallel coordinate analyses, etc. to identify the deviations and predict or detect onset of an undesired event such as a process perturbation or electrical trip.