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A data-driven approach for designing STATCOM additional damping controller for wind farms

机译:一种数据驱动的风电场STATCOM附加阻尼控制器设计方法

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摘要

Due to the fluctuation characteristics of the wind turbine (WT) production, the design of the control system needs to ensure the stability of the power system at different wind speeds. In this context, a WT-oriented adaptive robust control agent for a static synchronous compensator having additional damper controller (STATCOM-ADC) is proposed in this paper. An artificial neural network based estimator for system identification which can identify the equivalent transfer function of the whole system in real time is used in this paper. Then a Deep Deterministic Policy Gradient (DDPG) algorithm is adopted to train the agent on learning the adaptive robust control strategy for STATCOM-ADC. Compared with other control strategies, the proposed method has modelled self-learning abilities, and the parameter settings provided by the agent for one operation state of the system are still applicable to other states. Simulation results on the actual wind farm located in China Ningxia province show that the proposed method can enhance the stability of the system under different fault conditions and wind speeds.
机译:由于风力涡轮机(WT)生产的波动特性,控制系统的设计需要确保电力系统在不同风速下的稳定性。在这种情况下,本文针对具有附加阻尼器控制器(STATCOM-ADC)的静态同步补偿器,提出了一种面向WT的自适应鲁棒控制代理。本文采用了一种基于人工神经网络的系统辨识估计器,可以实时识别整个系统的等效传递函数。然后采用深度确定性策略梯度算法(DDPG)来训练代理,以学习STATCOM-ADC的自适应鲁棒控制策略。与其他控制策略相比,该方法具有自学习能力的建模能力,并且代理为系统的一种操作状态提供的参数设置仍然适用于其他状态。在中国宁夏实际风电场的仿真结果表明,该方法可以提高系统在不同故障条件和风速下的稳定性。

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