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Data-driven and adaptive control applications to a wind turbine benchmark model

机译:数据驱动和自适应控制在风力发电机基准模型中的应用

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Wind turbines are complex dynamic systems forced by stochastic wind disturbances, as well as gravitational, centrifugal, and gyroscopic loads. Since their aerodynamics are nonlinear, wind turbine modelling is thus challenging. Moreover, accurate models should contain many degrees of freedom to capture the most important dynamic effects. Therefore, the design of control algorithms for wind turbines should account for these complexities. However, these algorithms must capture the most important turbine dynamics without being too complex and unwieldy. The main purpose of this study is thus to give two examples of viable and practical designs of control schemes with application to a wind turbine prototype model. Extensive simulations on the benchmark process and Monte-Carlo analysis are the tools for assessing experimentally the main features of the proposed control schemes, in the presence of modelling and measurement errors. These developed control methods are also compared with other different approaches, in order to evaluate advantages and drawbacks of the considered solutions. Finally, Hardware-In-the-Loop simulations serve to highlight the potential application of the proposed control strategies to real wind turbines.
机译:风力涡轮机是复杂的动态系统,受到随机风,重力,离心和陀螺负载的影响。由于它们的空气动力学是非线性的,因此风力涡轮机建模具有挑战性。此外,准确的模型应包含许多自由度,以捕获最重要的动态效果。因此,用于风力涡轮机的控制算法的设计应考虑这些复杂性。但是,这些算法必须捕捉最重要的涡轮动力学,而又不能过于复杂和笨拙。因此,本研究的主要目的是给出适用于风力涡轮机原型模型的控制方案的可行和实用设计的两个示例。在存在建模和测量误差的情况下,对基准过程和蒙特卡洛分析进行的广泛仿真是用于通过实验评估所提出的控制方案的主要特征的工具。这些发达的控制方法也与其他不同的方法进行了比较,以评估所考虑解决方案的优缺点。最后,“在环硬件”仿真有助于突出提出的控制策略在实际风力涡轮机中的潜在应用。

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