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A data-driven approach for fatigue-based individual blade pitch controller selection from wind conditions

机译:一种基于数据的驱动方法,可从风况中选择基于疲劳的单个叶片桨距控制器

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In a context of wind power production growth, it is necessary to optimize the levelized cost of energy by reducing the wind turbine operation and maintenance costs. This paper addresses these issues through an innovative data-driven approach, applied to individual pitch control and based on wind conditions clustering, from light detection and ranging (LiDAR) wind field reconstruction. A set of controllers is first designed, and a surrogate model is fitted to predict the economic fatigue cost of the wind turbine in closed-loop for each of these controllers, given a cluster of wind conditions. This allows online selection of the controller minimizing mechanical fatigue loads among the candidates for each wind condition. Preliminary tests show promising results regarding the effectiveness of this method in reducing wind turbine fatigue when compared to a single optimized individual pitch controller. The main advantages of this approach are to limit the sensitivities to controller tuning procedure and to provide an economically driven control strategy based on fatigue theory that can be effectively adapted to different wind turbine systems.
机译:在风力发电产量增长的背景下,有必要通过减少风力涡轮机的运行和维护成本来优化能源的均摊成本。本文通过一种创新的数据驱动方法解决了这些问题,该方法适用于单独的俯仰控制,并基于风况聚类(来自光检测和测距(LiDAR)风场重建)。首先设计一组控制器,然后安装一个替代模型来预测给定的一组风况,这些控制器中的每一个在闭环状态下的风力涡轮机的经济疲劳成本。这样就可以在线选择控制器,从而最大程度地降低每种风况候选者之间的机械疲劳负荷。初步测试表明,与单个优化的单个变桨控制器相比,该方法在降低风力涡轮机疲劳方面的有效性令人鼓舞。这种方法的主要优点是将灵敏度限制在控制器调整过程中,并提供一种基于疲劳理论的经济驱动的控制策略,该策略可以有效地适应不同的风力涡轮机系统。

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