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Reactive Power Control of Three-Phase Grid-Connected PV System During Grid Faults Using Takagi–Sugeno–Kang Probabilistic Fuzzy Neural Network Control

机译:Takagi-Sugeno-Kang概率模糊神经网络控制三相并网光伏发电系统的无功功率

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摘要

An intelligent controller based on the Takagi–Sugeno–Kang-type probabilistic fuzzy neural network with an asymmetric membership function (TSKPFNN-AMF) is developed in this paper for the reactive and active power control of a three-phase grid-connected photovoltaic (PV) system during grid faults. The inverter of the three-phase grid-connected PV system should provide a proper ratio of reactive power to meet the low-voltage ride through (LVRT) regulations and control the output current without exceeding the maximum current limit simultaneously during grid faults. Therefore, the proposed intelligent controller regulates the value of reactive power to a new reference value, which complies with the regulations of LVRT under grid faults. Moreover, a dual-mode operation control method of the converter and inverter of the three-phase grid-connected PV system is designed to eliminate the fluctuation of dc-link bus voltage under grid faults. Furthermore, the network structure, the online learning algorithm, and the convergence analysis of the TSKPFNN-AMF are described in detail. Finally, some experimental results are illustrated to show the effectiveness of the proposed control for the three-phase grid-connected PV system.
机译:本文开发了基于具有不对称隶属函数的Takagi–Sugeno–Kang型概率模糊神经网络(TSKPFNN-AMF)的智能控制器,用于三相并网光伏(PV)的无功和有功功率控制。 )系统在电网故障期间。三相并网光伏系统的逆变器应提供适当比例的无功功率,以满足低压穿越(LVRT)规定,并在电网故障期间同时控制输出电流而不会超过最大电流限制。因此,所提出的智能控制器将无功功率的值调整为新的参考值,这符合电网故障下LVRT的规定。此外,设计了三相并网光伏系统的变流器和逆变器双模运行控制方法,以消除电网故障下直流母线电压的波动。此外,详细描述了TSKPFNN-AMF的网络结构,在线学习算法和收敛性分析。最后,通过一些实验结果说明了所提出的控制方法对三相并网光伏系统的有效性。

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