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Maximum power extraction on wind turbine systems using block-backstepping with gradient dynamics control

机译:风力发电机系统的最大功率提取,采用块后推和梯度动力学控制

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In this work, a novel adaptive control scheme that allows driving a stand-alone variable-speed wind turbine system to its maximum power point is presented. The scheme is based on the regulation of the optimal rotor speed point of the wind turbine. In order to compute the rotor speed reference, a model-based extremum-seeking algorithm is derived. The wind speed signal is necessary to calculate this reference, and a novel artificial neural network is derived to approximate this signal. The neural network does not need off-line learning stage, because a nonlinear dynamics for the weight vector is proposed. A block-backstepping controller is derived to stabilize and to drive the system to the optimal power point; to avoid singularities, the gradient dynamics technique is applied to this controller. Numerical simulations are carried out to show the performance of the controller and the estimator. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:在这项工作中,提出了一种新颖的自适应控制方案,该方案允许将独立变速风力涡轮机系统驱动到其最大功率点。该方案基于风力涡轮机的最佳转子速度点的调节。为了计算转子速度参考,推导了基于模型的极值搜索算法。风速信号是计算该参考值所必需的,并且派生了新颖的人工神经网络来近似该信号。神经网络不需要离线学习阶段,因为提出了权向量的非线性动力学。推导了块后推控制器,以稳定并驱动系统至最佳功率点。为避免奇异性,将梯度动力学技术应用于此控制器。进行了数值模拟,以显示控制器和估计器的性能。版权所有(c)2016 John Wiley&Sons,Ltd.

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