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DFIG Based Wind Turbine System for Clemson Micro-Grid

机译:基于DFIG的Clemson微电网风力发电机系统

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摘要

As an important part of the smart grid, the micro-grid interfaces with distributed energy sources, loads and control devices. A doubly fed induction generator (DFIG) based wind turbine (WT) is the main power source of the presented project. The DFIG system is connected to the three phase AC grid via back-to-back power converter and an LCL filter. Decoupled q-d control strategies are investigated for the DFIG system. Matlab/Simulink results will show the performance of the proposed system. Hardware validation results are also presented and discussed.;As a rapidly increasing research interest area the dc micro-grid has been extensively investigated. A topology is proposed to connect the DFIG based WT system to a dc link using a diode bridge and a three phase power converter. The rotor side of the DFIG is connected to the dc link through a converter while the stator is connecting to a three phase diode bridge with the dc side connected to a dc link. The control method is developed to regulate the stator frequency and the d-q axis voltage of the diode bridge to operate the DFIG at a desired stator frequency and generate the required power.;Undesired harmonics in the three phase system will lead to excessive THD, a decrease the power quality and an increase the power loss of the system. An novel methods to compensate the current harmonics by controlling the power converter of the DFIG system is also proposed. With the DFIG connected to the three phase AC gird, the focus has been put into a scenario: a nonlinear load connected to the same node of the DFIG point of common coupling (PCC) to the gird, to draw the harmonics to the system. In the proposed dc link system, the diode bridge will introduce harmonics to the stator current of the DFIG. In both cases, the selected low-order harmonics are detected and calculated by a multiple reference frame estimator. The control methods of how to regulate the harmonics are developed for both the grid-side converter and the rotor-side converter based on multiple reference frame theory.;A hybrid state observer for speed-sensorless motor drives of induction machines is also proposed. The hybrid observer comprises of a Luenberger observer and a sliding mode observer. For a conventional induction motor with shorted rotor, the stator currents and rotor flux linkages are estimating following a Luenberger observer. While, for a DFIG the similar approach will apply to the stator currents and rotor currents. The rotor speed is estimated using a sliding mode observer. The combination of two observers takes advantage of both approaches. The Luenberger observer is easy to realize and the computational burden is small. The sliding mode observer is known for its robustness with respect to model parameter errors and it will also provide a fast convergence rate. The chattering of the sliding mode observer is addressed by applying a boundary layer.
机译:作为智能电网的重要组成部分,微电网与分布式能源,负载和控制设备进行交互。基于双馈感应发电机(DFIG)的风力涡轮机(WT)是本项目的主要动力来源。 DFIG系统通过背对背电源转换器和LCL滤波器连接到三相交流电网。研究了DFIG系统的解耦q-d控制策略。 Matlab / Simulink结果将显示所提出系统的性能。硬件验证的结果也被介绍和讨论。作为快速增长的研究热点,直流微电网已经得到了广泛的研究。提出了一种拓扑结构,可使用二极管电桥和三相功率转换器将基于DFIG的WT系统连接至直流链路。 DFIG的转子侧通过转换器连接到直流母线,而定子则连接到三相二极管电桥,而直流侧则连接到直流母线。开发了控制方法来调节定子频率和二极管桥的dq轴电压,以使DFIG在所需的定子频率下运行并产生所需的功率;三相系统中不希望的谐波会导致总谐波失真(THD)减小电能质量会增加系统的电能损耗。还提出了一种通过控制DFIG系统的功率转换器来补偿电流谐波的新颖方法。将DFIG连接到三相AC电网时,重点已放在一种方案中:将非线性负载连接到DFIG的公共耦合点(PCC)到电网的DFIG的同一节点上,以将谐波吸引到系统中。在提出的直流链路系统中,二极管桥将谐波引入到双馈双馈定子的定子电流中。在这两种情况下,选定的低阶谐波均由多参考帧估计器检测和计算。基于多参考框架理论,针对电网侧变流器和转子侧变流器,提出了调节谐波的控制方法。混合观察器包括Luenberger观察器和滑模观察器。对于转子短路的传统感应电动机,根据Luenberger观测器估算定子电流和转子磁链。而对于DFIG,类似的方法将适用于定子电流和转子电流。使用滑模观测器估算转子速度。两名观察员的结合利用了这两种方法。 Luenberger观测器易于实现,并且计算量很小。滑模观察器以其相对于模型参数误差的鲁棒性而闻名,它还将提供快速的收敛速度。滑动模式观察器的抖动通过应用边界层来解决。

著录项

  • 作者

    Li, Jia.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 118 p.
  • 总页数 118
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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