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Compensating Stator Transient Flux during Symmetric and Asymmetric Faults using Virtual Flux based on Demagnetizing Current in DFIG Wind Turbines

机译:基于双馈双馈风力发电机的消磁电流,利用虚拟通量补偿对称和非对称故障期间的定子瞬变通量

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Under normal working conditions, the stator flux of doubly-fed induction generators only includes the forced component; thus, controllers are mainly designed in accordance to this component. During fault conditions, in addition to this component, the zero sequence component appears. Under this new condition, the conventional control strategies cannot control the DFIG properly. So, the induced voltage in the rotor windings increases, which leads to the rotor current overshoot, overvoltage of DC link and mechanical stress caused by electromagnetic torque oscillations. In this article, a new control strategy is presented that fulfills low voltage ride through requirements by using virtual flux based on demagnetizing current. This method can improve the transient response of the stator flux during symmetric and asymmetric faults by creating a demagnetizing current to meet the grid code requirements. Finally, the validity of the proposed method is verified by the simulation results for a 1.5 MW wind turbine in MATLAB/SIMULINK environment and the results have been discussed and analyzed in the last section of the article to show the proficiency of the proposed method.
机译:在正常工作条件下,双馈感应发电机的定子磁通只包含受力分量;因此,控制器主要是根据该组件设计的。在故障情况下,除该组件外,还会出现零序组件。在这种新情况下,常规控制策略无法正确控制DFIG。因此,转子绕组中的感应电压增加,这会导致转子电流过冲,直流母线过电压以及电磁转矩振荡引起的机械应力。在本文中,提出了一种新的控制策略,该策略通过使用基于消磁电流的虚拟磁通来满足低电压穿越要求。通过产生消磁电流以满足电网规范要求,该方法可以改善对称和非对称故障期间定子磁通的瞬态响应。最后,通过在MATLAB / SIMULINK环境下对1.5 MW风力发电机组的仿真结果验证了该方法的有效性,并在本文的最后部分对结果进行了讨论和分析,以证明该方法的有效性。

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