Prediction of water chemical properties in the cycle of a coal power plant using artificial neural networks

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Date
1998
Journal Title
Journal ISSN
Volume Title
Publisher
IEEE
Abstract
Describes a systematic methodology based on artificial neural networks for model identification and its application to the prediction of water chemical properties under normal operation conditions in a power plant. The model obtained allows detection of incipient anomalies by comparison between the real and predicted values.
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Keywords
Water, Chemicals, Power generation, Input variables, Predictive models, Power system modeling, Neural networks, Artificial neural networks, Fault detection, Equations
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