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    Construction of operational data-driven power curve of a generator by industry 4.0 data analytics

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    Date
    2021-02
    Type
    Article
    Author
    Muhammad Ashraf, Waqar
    Moeen Uddin, Ghulam
    Farooq, Muhammad
    Riaz, Fahid
    ETAL:
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    Abstract
    Constructing the power curve of a power generation facility integrated with complex and large-scale industrial processes is a difficult task but can be accomplished using Industry 4.0 data analytics tools. This research attempts to construct the data-driven power curve of the generator installed at a 660 MW power plant by incorporating artificial intelligence (AI)-based modeling tools. The power produced from the generator is modeled by an artificial neural network (ANN)—a reliable data analytical technique of deep learning. Similarly, the R2.ai application, which belongs to the automated machine learning (AutoML) platform, is employed to show the alternative modeling methods in using the AI approach. Comparatively, the ANN performed well in the external validation test and was deployed to construct the generator’s power curve. Monte Carlo experiments comprising the power plant’s thermo-electric operating parameters and the Gaussian noise are simulated with the ANN, and thus the power curve of the generator is constructed with a 95% confidence interval. The performance curves of industrial systems and machinery based on their operational data can be constructed using ANNs, and the decisions driven by these performance curves could contribute to the Industry 4.0 vision of effective operation management.
    URI
    https://dspace.adu.ac.ae/handle/1/4508
    DOI
    https://doi.org/10.3390/en14051227
    Citation
    Ashraf, W. M., Uddin, G. M., Farooq, M., Riaz, F., Ahmad, H. A., Kamal, A. H., ... & Krzywanski, J. (2021). Construction of operational data-driven power curve of a generator by industry 4.0 data analytics. Energies, 14(5), 1227.
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