Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking

Wind turbine performance is a critical aspect of renewable energy systems, and this study focuses on optimizing it through innovative strategies. It also discussed the different parts of WECS, such as wind turbines, generators, and control systems, to enhance their performance and efficiency. The r...

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Main Authors: Muhammad Qasim Nawaz, Wei Jiang, Aimal Khan
Format: Article
Language:English
Published: University of Diyala 2024-03-01
Series:Diyala Journal of Engineering Sciences
Subjects:
Online Access:https://djes.info/index.php/djes/article/view/1249
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author Muhammad Qasim Nawaz
Wei Jiang
Aimal Khan
author_facet Muhammad Qasim Nawaz
Wei Jiang
Aimal Khan
author_sort Muhammad Qasim Nawaz
collection DOAJ
description Wind turbine performance is a critical aspect of renewable energy systems, and this study focuses on optimizing it through innovative strategies. It also discussed the different parts of WECS, such as wind turbines, generators, and control systems, to enhance their performance and efficiency. The research delves into the integration of speed control and Maximum Power Point Tracking (MPPT) mechanisms using a sophisticated Three-Phase Interleaved Buck-Boost Converter. The converter's unique topology, involving a back-to-back connection, shows a pivotal part in shaping the performance of the wind turbine. Furthermore, the near-zero implementation in MPPT strives to minimize oscillations and enhance photovoltaic panel and wind turbine efficiency. This technique, as explored in various studies, aims to achieve stable, efficient power output by reducing perturbations, ensuring optimal energy capture, and improving overall system reliability. This study investigates the transformation before and after near-zero implementation in various contexts. It explores the impact on energy efficiency with near-zero properties, and the performance of buildings, providing insights into the substantial changes brought about by near-zero initiatives. Additionally, the implementation of MPPT is explored, demonstrating that adjusting delta values can lead to faster stabilization times. By changing the negative delta value to -0.0005, the system achieves stabilization at the target power of 19 kW within 0.2 seconds. These findings emphasize the versatility of the Three-Phase Interleaved Buck-Boost Converter in enhancing both speed control and MPPT for wind turbines
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spelling doaj.art-fc99ca17f8da450a93c204adf83809c72024-03-08T19:19:17ZengUniversity of DiyalaDiyala Journal of Engineering Sciences1999-87162616-69092024-03-0117110.24237/djes.2024.17101Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking Muhammad Qasim Nawaz0Wei Jiang1Aimal Khan2Department of Electrical Engineering and Automation, Yangzhou University, 225127 Yangzhou, China Department of Electrical Engineering and Automation, Yangzhou University, 225127 Yangzhou, China Department of Electrical Engineering and Automation, Yangzhou University, 225127 Yangzhou, China Wind turbine performance is a critical aspect of renewable energy systems, and this study focuses on optimizing it through innovative strategies. It also discussed the different parts of WECS, such as wind turbines, generators, and control systems, to enhance their performance and efficiency. The research delves into the integration of speed control and Maximum Power Point Tracking (MPPT) mechanisms using a sophisticated Three-Phase Interleaved Buck-Boost Converter. The converter's unique topology, involving a back-to-back connection, shows a pivotal part in shaping the performance of the wind turbine. Furthermore, the near-zero implementation in MPPT strives to minimize oscillations and enhance photovoltaic panel and wind turbine efficiency. This technique, as explored in various studies, aims to achieve stable, efficient power output by reducing perturbations, ensuring optimal energy capture, and improving overall system reliability. This study investigates the transformation before and after near-zero implementation in various contexts. It explores the impact on energy efficiency with near-zero properties, and the performance of buildings, providing insights into the substantial changes brought about by near-zero initiatives. Additionally, the implementation of MPPT is explored, demonstrating that adjusting delta values can lead to faster stabilization times. By changing the negative delta value to -0.0005, the system achieves stabilization at the target power of 19 kW within 0.2 seconds. These findings emphasize the versatility of the Three-Phase Interleaved Buck-Boost Converter in enhancing both speed control and MPPT for wind turbines https://djes.info/index.php/djes/article/view/1249Wind turbine stabilityWind turbine performanceSpeed controlMaximum power point trackingNear-zero implementation
spellingShingle Muhammad Qasim Nawaz
Wei Jiang
Aimal Khan
Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking
Diyala Journal of Engineering Sciences
Wind turbine stability
Wind turbine performance
Speed control
Maximum power point tracking
Near-zero implementation
title Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking
title_full Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking
title_fullStr Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking
title_full_unstemmed Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking
title_short Enhancing Wind Turbine Stability and Performance: A Case Study on Speed Control and Maximum Power Point Tracking
title_sort enhancing wind turbine stability and performance a case study on speed control and maximum power point tracking
topic Wind turbine stability
Wind turbine performance
Speed control
Maximum power point tracking
Near-zero implementation
url https://djes.info/index.php/djes/article/view/1249
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AT weijiang enhancingwindturbinestabilityandperformanceacasestudyonspeedcontrolandmaximumpowerpointtracking
AT aimalkhan enhancingwindturbinestabilityandperformanceacasestudyonspeedcontrolandmaximumpowerpointtracking