Darshan S. Avhad, G. Vijayakumar | International Journal of Power Electronics Controllers and Converters | Vol 12, Issue 02 | ISSN: 2456-1614
Abstract
Wind energy is becoming one of the fastest growing renewable source in the world. It is clean and low cost, but when wind system connects to electrical grid there are many challenges like voltage fluctuation, harmonics, power loss and less stability. Power quality and efficiency problem make difficulty for strong integration with grid. For this reason, many research work is going on in area of condition monitoring, converter design, storage management, and intelligent control to make wind energy system more reliable. Recent studies show that Bayesian network can help in reliability assessment and fault prediction, fuzzy and AI based control can improve power conversion, and new DC-DC or DC-AC converter design can give high efficiency with less loss. Also, hybrid storage using supercapacitor or battery reduce power fluctuation and make output more smooth. IoT and industrial monitoring also provide real-time data for better decision and predictive maintenance. All this research prove that stability of wind energy system depend on smart control, efficient power electronics and proper storage system. This paper focus on optimizing both power quality and system efficiency for wind energy conversion system. The aim is to reduce harmonics, improve voltage stability, and give better integration with grid. The proposed framework use combination of advanced converter, intelligent controller and hybrid energy storage to handle fluctuation of wind speed and maintain smooth power.
Keywords - 6G, Deep Learning, Resource Allocation, Sustainability, Energy Efficiency, Federated Learning, RIS, Digital Twin
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How to cite this article
@article{AvhadDS2026,
author = {Darshan S. Avhad and G. Vijayakumar},
title = {Optimizing Power Quality and System Efficiency in Wind Energy Conversion Systems for Enhanced Stability and Robust Integration with the Electrical Grid},
journal = {International Journal of Power Electronics Controllers and Converters},
year = {2026},
volume = {12},
number = {02},
issn = {2456-1614},
url = {https://journalspub.com/publication/ijpecc/article=27588}
}