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首页> 外文期刊>International Journal of Robust and Nonlinear Control >Closed-loop identification of the time-varying dynamics of variable-speed wind turbines
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Closed-loop identification of the time-varying dynamics of variable-speed wind turbines

机译:变速风力发电机组时变动力学的闭环辨识

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The trend with offshore wind turbines is to increase the rotor diameter as much as possible to decrease the costs per kWh. The increasing dimensions have led to the relative increase in the loads on the wind turbine structure. Because of the increasing rotor size and the spatial load variations along the blade, it is necessary to react to turbulence in a more detailed way: each blade separately and at several separate radial distances. This combined with the strong nonlinear behavior of wind turbines motivates the need for accurate linear parameter-varying (LPV) models for which advanced control synthesis techniques exist within the robust control framework. In this paper we present a closed-loop LPV identification algorithm that uses dedicated scheduling sequences to identify the rotational dynamics of a wind turbine. We assume that the system undergoes the same time variation several times, which makes it possible to use time-invariant identification methods as the input and the output data are chosen from the same point in the variation of the system. We use time-invariant techniques to identify a number of extended observability matrices and state sequences that are inherent to subspace identification identified in a different state basis. We show that by formulating an intersection problem all states can be reconstructed in a general state basis from which the system matrices can be estimated. The novel algorithm is applied on a wind turbine model operating in closed loop.
机译:离岸风力涡轮机的趋势是尽可能增加转子直径以降低每千瓦时的成本。尺寸的增加导致风力涡轮机结构上的负载相对增加。由于转子尺寸的增加和沿叶片的空间负载变化,有必要以更详细的方式对湍流做出反应:每个叶片分开并以几个分开的径向距离移动。这与风力涡轮机强大的非线性行为相结合,激发了对精确的线性参数变化(LPV)模型的需求,对于这些模型,鲁棒的控制框架中存在先进的控制综合技术。在本文中,我们提出了一种闭环LPV识别算法,该算法使用专用的调度序列来识别风力涡轮机的旋转动力学。我们假设系统多次经历相同的时间变化,这使得可以使用时不变的识别方法,因为输入和输出数据是从系统变化的同一点选择的。我们使用时不变技术来标识许多扩展的可观察性矩阵和状态序列,这些矩阵和状态序列是在不同状态基础上标识的子空间标识所固有的。我们表明,通过制定相交问题,可以在一般状态基础上重构所有状态,从而可以估计系统矩阵。该新颖算法被应用于在闭环下运行的风力涡轮机模型。

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