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

Muhammad Qasim Nawaz, Wei Jiang, Aimal Khan
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Abstract

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
提高风力涡轮机的稳定性和性能:速度控制和最大功率点跟踪案例研究
风力涡轮机的性能是可再生能源系统的一个关键方面,本研究的重点是通过创新策略优化其性能。研究还讨论了风力发电系统的不同部分,如风力涡轮机、发电机和控制系统,以提高其性能和效率。该研究深入探讨了利用先进的三相交错降压-升压转换器整合速度控制和最大功率点跟踪(MPPT)机制的问题。该转换器采用背靠背连接的独特拓扑结构,在塑造风力涡轮机性能方面发挥了关键作用。此外,在 MPPT 中接近零的实施力图最大限度地减少振荡,提高光伏电池板和风力涡轮机的效率。正如多项研究中所探讨的那样,这项技术旨在通过减少扰动实现稳定、高效的电力输出,确保最佳的能量捕获,并提高整个系统的可靠性。本研究调查了在各种情况下实施近零前和近零后的转变。研究探讨了近零特性对能源效率的影响以及建筑物的性能,深入探讨了近零倡议带来的实质性变化。此外,还探讨了 MPPT 的实施,证明调整三角洲值可以加快稳定时间。通过将负 delta 值改为 -0.0005,系统在 0.2 秒内实现了 19 千瓦目标功率的稳定。这些发现强调了三相交错降压-升压转换器在增强风力涡轮机速度控制和 MPPT 方面的多功能性。
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