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Advanced control techniques for doubly fed induction generator-based wind turbine converters to improve low voltage ride-through during system imbalances.

机译:基于双馈感应发电机的风力涡轮机转换器的高级控制技术,可在系统失衡期间改善低压穿越。

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摘要

A doubly-fed induction generator (DFIG) applied to wind power generation is under study for low voltage ride-through application during system disturbances. Conventional dq axis current control using voltage source converters for both the grid side and the rotor side of the DFIG are analyzed and simulated. DFIG operation is investigated under balanced and unbalanced system disturbances. A conventional d-axis and q-axis control applied to a voltage source converter (VSC) during a system imbalance exhibits oscillations in the stiff DC link voltage as well as in the real and reactive powers of the converter. Multiple advanced control methods are explored and compared for imbalance operations. An advanced control technique utilizing both positive and negative sequence domain is evaluated. The approach demonstrates the stabilization of the DC link voltage to a greater extent during a disturbance but is more sluggish than the conventional control. An innovative control strategy that employs the technique of direct power control (DPC) is also investigated. This control achieves real and reactive power stability with simple active and reactive power control variables replacing the current control loops in the conventional case. A modified DPC algorithm is proposed to eliminate the current harmonics created by DPC during system disturbances. The DPC is further extended to the rotor-side converter of the DFIG thus controlling the complete system using this technique. The DPC is implemented using a three-phase converter designed on a PCB using EagleRTM. A Texas Instruments RTM TMS320F2812 DSP is used to implement the control algorithm. The converter is tested for ride through capability using an industrial power corruptor. The results are compared to the simulation results for compliance with standard grid codes.
机译:正在研究应用于风力发电的双馈感应发电机(DFIG),以在系统扰动期间进行低压穿越。对DFIG的电网侧和转子侧使用电压源转换器的传统dq轴电流控制进行了分析和仿真。在平衡和不平衡的系统干扰下研究了DFIG的运行情况。在系统不平衡期间,应用于电压源转换器(VSC)的常规d轴和q轴控制会在刚性直流母线电压以及转换器的有功功率和无功功率中产生振荡。探索并比较了多种高级控制方法以实现不平衡运行。评估了利用正和负序列域的先进控制技术。该方法在扰动期间更大程度地展示了直流母线电压的稳定,但比常规控制更慢。还研究了采用直接功率控制(DPC)技术的创新控制策略。该控制通过简单的有功和无功功率控制变量代替常规情况下的电流控制回路来实现有功和无功功率的稳定性。提出了一种改进的DPC算法,以消除DPC在系统扰动期间产生的电流谐波。 DPC进一步扩展到DFIG的转子侧转换器,从而使用此技术控制整个系统。 DPC是通过使用EagleRTM在PCB上设计的三相转换器实现的。使用德州仪器(TI)RTM TMS320F2812 DSP来实现控制算法。使用工业电源破坏器测试了转换器的穿越能力。将结果与仿真结果进行比较,以符合标准网格代码。

著录项

  • 作者

    Baggu, Murali Mohan.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:05

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