Prediction Enhancement of Machine Learning Using Time Series Modeling in Gas Turbines

Author:

Goyal Vipul1,Xu Mengyu2,Kapat Jayanta1,Vesely Ladislav1

Affiliation:

1. Center for Advanced Turbomachinery and Energy Research, Department of Mechanical and Aerospace Engineering, University of Central Florida , Orlando, FL 32816

2. Center for Advanced Turbomachinery and Energy Research, Department of Statistics and Data Science, University of Central Florida , Orlando, FL 32816

Abstract

Abstract This study is based on time-series data taken from the combined cycle heavy-duty utility gas turbines. For analysis, first a multistage vector autoregressive model is constructed for the nominal operation of the powerplant assuming sparsity in the association among variables and this is used as a basis for anomaly detection and prediction. This prediction is compared with the time-series data of the plant-operation containing anomalies. The comparative advantage based on prediction accuracy and applicability of the algorithms is discussed for the postprocessing. Next, the long-memory behavior of residuals is modeled, and heterogeneous variances are observed from the residuals of the generalized additive model. Autoregressive fractionally integrated moving average (ARFIMA) and generalized autoregressive conditional heteroskedasticity (GARCH) models are employed to fit the residual process, which significantly improve the prediction. Rolling one-step-ahead forecast is studied. Numerical experiments of abrupt changes and trend in the blade-path temperature are performed to evaluate the specificity and sensitivity of the prediction. The prediction is sensitive given reasonable signal-to-noise ratio and has lower false positive rate. The control chart is able to detect the simulated abrupt jump quickly.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference46 articles.

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2. International Energy Outlook 2021;EIA,2021

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4. Capital Cost and Performance Characteristic Estimates for Utility Scale Electric Power Generating Technologies;EIA,2020

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