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A fuzzy controller for maximum energy extraction from variable speed wind power generation systems

机译:从变速风力发电系统中提取最大能量的模糊控制器

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The wind power production spreading, also aided by the transition from constant to variable speed operation, involves the development of efficient control systems to improve the effectiveness of wind systems. This paper presents a data-driven design methodology able to generate a Takagi-Sugeno-Kang (TSK) fuzzy model for maximum energy extraction from variable speed wind turbines. In order to obtain the TSK model, fuzzy clustering methods for partitioning the input-output space, combined with genetic algorithms (GA), and recursive least-squares (LS) optimization methods for model parameter adaptation are used. The implemented TSK fuzzy model, as confirmed by some simulation results on a doubly fed induction generator connected to a power system, exhibits high speed of computation, low memory occupancy, fault tolerance and learning capability.
机译:从恒速运行到变速运行的过渡还有助于风力发电的扩展,涉及开发有效的控制系统以提高风力系统的效率。本文提出了一种数据驱动的设计方法,该方法能够生成Takagi-Sugeno-Kang(TSK)模糊模型,以从变速风力涡轮机中提取最大能量。为了获得TSK模型,使用了模糊聚类方法来划分输入输出空间,并结合了遗传算法(GA)和递归最小二乘(LS)优化方法来进行模型参数自适应。如在连接到电力系统的双馈感应发电机上的一些仿真结果所证实的那样,已实施的TSK模糊模型具有较高的计算速度,较低的内存占用率,容错能力和学习能力。

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