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Wavelet-based individual blade pitch control for vibration control of wind turbine blades

机译:基于小波的各个刀片俯仰控制,用于风力涡轮机叶片的振动控制

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摘要

This paper proposes a novel individual blade pitch control strategy with the objective of reducing blade vibration. A wavelet linear quadratic regulator (LQR) control algorithm, which is an advanced modification of the conventional LQR controller, has been developed for this purpose. The formulation of the modified LQR algorithm uses the information derived from wavelet analysis of the blade response in real time to obtain the local energy distribution over frequency bands. This information, reflecting the effect of excitation on the blades, is used to design the pitch controller by updating the weighting matrices to be applied to the response energy and the control effort. The proposed control algorithm does not require a priori choice of the weights as in the classical case and calculates the gains using the weights based on the response characteristics in real time. The optimal LQR control problem is solved for each time interval with updated weighting matrices, through the Ricatti equation, leading to time-varying gain matrices. Simulations are carried out using the National Renewable Energy Laboratory's (NREL) high-fidelity FAST wind turbine simulation model. The simulations indicate that the proposed new wavelet controller achieves significant reduction in the out-of-plane response of the blades as compared with standard LQR or industry standard proportional integral (PI) controllers, at the expense of minor increases in rotational speed variability and increased pitch actuator usage.
机译:本文提出了一种具有减少叶片振动的目的的新颖单个刀片桨距控制策略。为此目的开发了一种小波线性二次调节器(LQR)控制算法,该控制算法是传统LQR控制器的高级修改。修改的LQR算法的配方使用实时地利用从刀片响应的小波分析导出的信息,以获得频带上的局部能量分布。反映在叶片上的激发效果的该信息用于通过更新要应用于响应能量和控制工作的加权矩阵来设计音高控制器。所提出的控制算法不需要优先考虑的权重,与经典情况一样,并基于实时基于响应特性使用权重的增益。通过Ricatti等式的具有更新加权矩阵的每个时间间隔解决了最佳LQR控制问题,导致时变矩阵。使用全国可再生能源实验室(NREL)高保真快速风力涡轮机仿真模型进行模拟。模拟表明,与标准LQR或行业标准比例积分(PI)控制器相比,叶片的外平面响应的平面外响应的显着降低了,以缩小速度变异性和增加螺距执行器使用情况。

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