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Direct power control of DFIG based wind turbine based on wind speed estimation and particle swarm optimization

机译:基于风速估计和粒子群算法的DFIG风力发电机直接功率控制

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摘要

This paper presents a direct power control (DPC) design of a grid connected doubly fed induction generator (DFIG) based wind turbine system in order to track maximum absorbable power in different wind speeds. A generalized regression neural network (GRNN) is used to estimate wind speed and thereby the maximum absorbable power is determined online as a function of wind speed. Finally the proposed DPC strategy employs a nonlinear robust sliding mode control (SMC) scheme to calculate the required rotor control voltage directly. The concept of sliding mode control is incorporated into particle swarm optimization (PSO) to determine inertial weights. The new DPC based on SMC-PSO scheme has acceptable harmonic spectra of stator current by using space vector modulation (SVM) block with constant switching frequency. Simulation results on 660-kw grid-connected DFIG are provided and show the effectiveness of the new technique, for tracking maximum power in presence machine parameters variation.
机译:本文提出了一种基于电网连接的双馈感应发电机(DFIG)的风力涡轮机系统的直接功率控制(DPC)设计,以便跟踪不同风速下的最大可吸收功率。广义回归神经网络(GRNN)用于估计风速,从而根据风速在线确定最大可吸收功率。最后,提出的DPC策略采用非线性鲁棒滑模控制(SMC)方案直接计算所需的转子控制电压。滑模控制的概念已合并到粒子群优化(PSO)中,以确定惯性权重。通过使用具有恒定开关频率的空间矢量调制(SVM)模块,基于SMC-PSO方案的新型DPC具有可接受的定子电流谐波谱。提供了在660千瓦并网DFIG上的仿真结果,并显示了该新技术的有效性,该技术可用于跟踪存在的机器参数变化时的最大功率。

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