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Performance monitoring of kaplan turbine based hydropower plant under variable operating conditions using machine learning approach

  • Krishna Kumar
  • , Aman Kumar
  • , Gaurav Saini
  • , Mazin Abed Mohammed
  • , Rachna Shah
  • , Jan Nedoma
  • , Radek Martinek
  • , Seifedine Kadry
  • Indian Institute of Technology Roorkee
  • CSIR - Central Building Research Institute
  • Harcourt Butler Technological Institute
  • University of Anbar
  • VŠB – Technical University of Ostrava
  • Indian Institute of Information Technology, Guwahati
  • Noroff University College

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Silt is the leading cause of the erosion of the turbine's underwater components during hydropower generation. This erosion subsequently decreases the machine's efficiency. The present study aims to develop statistical correlations for predicting the efficiency of a hydropower plant based on the Kaplan turbine. Historical data from a Kaplan turbine-based hydropower plant was employed to create the model. Curve fitting, multilinear regression (MLR), and artificial neural network (ANN) techniques were used to develop models for predicting the machine's efficiency. The results show that the ANN method is better at predicting the machine's efficiency than the MLR and curve fitting methods. It got an R2-value of 0.99966, a MAPE of 0.0239%, and an RMSPE of 0.1785%. Equipment manufacturers, plant owners, and researchers can use the established correlation to evaluate the machine's condition in real-time. Additionally, it offers utility in formulating effective operations and maintenance (O&M) strategies.

Original languageEnglish
Article number100958
JournalSustainable Computing: Informatics and Systems
Volume42
DOIs
StatePublished - Apr 2024
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • ANN
  • Curve Fitting
  • Hydro Turbine
  • Machine Learning
  • Operation and Maintenance

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