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Dynamic wind-integrated hydrothermal scheduling using a novel oppositional learning-based chaotic whale algorithm

  • 23-12-2024
  • Original Paper
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Abstract

The article introduces a dynamic wind-integrated hydrothermal scheduling approach using a novel chaotic whale algorithm with oppositional learning (OL-CWA). The primary goal is to minimize both pollutant emissions and generation costs in power systems. The study addresses the complexity of hydrothermal scheduling (HTS) problems, considering various constraints such as water balance, power balance, and transmission losses. The integration of renewable energy sources (RES) like wind power is crucial for reducing costs and emissions. The OL-CWA algorithm is designed to enhance the exploration and exploitation phases of the optimization process, leading to more efficient solutions. The study compares the performance of OL-CWA with other optimization methods, demonstrating its superiority in solving HTS problems. The article highlights the effectiveness of wind integration in reducing generation costs and emissions, making it a valuable contribution to the field of power system optimization.

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Title
Dynamic wind-integrated hydrothermal scheduling using a novel oppositional learning-based chaotic whale algorithm
Authors
Koustav Dasgupta
Provas Kumar Roy
V. Mukherjee
Publication date
23-12-2024
Publisher
Springer Berlin Heidelberg
Published in
Electrical Engineering / Issue 6/2025
Print ISSN: 0948-7921
Electronic ISSN: 1432-0487
DOI
https://doi.org/10.1007/s00202-024-02910-x
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