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NNPID-based Stator Voltage Oriented Vector Control for DFIG based Wind Turbine Systems

机译:基于NNPID的基于DFIG的风力发电机系统的定子电压定向矢量控制

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摘要

Doubly fed induction generators are widely adopted for the wind turbine systems since it is cheap and reliable. Based on the traditional stator voltage oriented vector control method, the performance of the proposed vector control is largely influenced by the variations of the DFIG parameters. And the classical PID algorithm cannot achieve the maximum power point tracking (MPPT) in time (owing to the transient wind). Hence, in this paper, to eliminate parameters variations on the power output and capture the MPPT rapidly, we propose a stator voltage oriented vector control which is based on a Neural Network PID (NNPID) technology. The weights which are being similar to the PID coefficients are adapted by Hebb rule to decrease the power error online according to the error gradient descent method, while the classical PID coefficients will be a constant. The effectiveness of the proposed method is demonstrated by corresponding simulation results: even in the case of wind mutation change, the proposed NNPID can track the variation of the wind energy, and robust to the DFIG parameters variations.
机译:双馈感应发电机价格便宜且可靠,因此被广泛应用于风力涡轮机系统中。基于传统的定子电压定向矢量控制方法,提出的矢量控制的性能在很大程度上受DFIG参数变化的影响。传统的PID算法由于瞬变风而无法及时实现最大功率点跟踪(MPPT)。因此,在本文中,为了消除功率输出上的参数变化并快速捕获MPPT,我们提出了一种基于神经网络PID(NNPID)技术的面向定子电压的矢量控制。根据误差梯度下降法,使用Hebb规则调整与PID系数相似的权重,以在线降低功率误差,而经典PID系数将是一个常数。相应的仿真结果证明了该方法的有效性:即使在风突变变化的情况下,所提出的NNPID也可以跟踪风能的变化,并且对DFIG参数的变化具有鲁棒性。

著录项

  • 来源
    《Studies in Informatics and Control》 |2014年第1期|5-12|共8页
  • 作者单位

    Sino-French International Joint Laboratory of Automatic Control and Signal Processing (LaFCAS), Nanjing University of Science & Technology (NUST), Nanjing 210094, China;

    Sino-French International Joint Laboratory of Automatic Control and Signal Processing (LaFCAS), Nanjing University of Science & Technology (NUST), Nanjing 210094, China;

    Sino-French International Joint Laboratory of Automatic Control and Signal Processing (LaFCAS), Nanjing University of Science & Technology (NUST), Nanjing 210094, China;

    LAGIS- CNRS UMR 8219, LaFCAS, University Lille Nord de France, Lille France, 59600;

    LAGIS- CNRS UMR 8219, LaFCAS, University Lille Nord de France, Lille France, 59600;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    wind turbine system; maximum power point tracking; DFIG; NNPID;

    机译:风力发电机系统;最大功率点跟踪;双飞NNPID;

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