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Active Islanding Detection for Inverter-Based Distributed Generation Systems With Power Control Interface

机译:具有功率控制接口的基于逆变器的分布式发电系统的主动孤岛检测

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Conventional active islanding detection methods (IDMs) are designed for the inverter-based distributed generation systems (DGSs) with current control interface. Such strategies can hardly be extended to the DGS with power control interface because the power control loop can affect the IDMs by enlarging the nondetection zones (NDZs). This paper presents an active IDM based on negative-sequence power injections for the DGS with power control interface. Combining with the IDM, the power control of the DGS is achieved with two control loops. One is the positive-sequence power loop that satisfies the conventional power control requirements. The other is the negative-sequence power/current variation loop for the islanding detection. The positive and negative sequences are separated by a simple strategy based on an all digital phase-locked loop. Due to the differences between the grid impedance and the local load impedance, the percentage of the voltage imbalance (VI) at the point of common coupling is utilized to indicate the islanding operation. For the grid-connected DGS, the VI is dominated by the grid voltage, which is a constant. If the DGS is disconnected from the grid, the VI is determined by the injected negative-sequence power/current. The NDZs of the presented scheme with different system configurations, such as grid impedances, load quality factors, etc., are also analyzed in this paper. By injecting the negative-sequence power/current periodically, the NDZs resulting from the imbalance of the grid voltages or the local loads are further mitigated. For multi-DGSs, the IDM is still effective if combined with the conventional under/overfrequency-protection strategy. The simulation and experimental results verify the effectiveness of the IDM.
机译:常规的主动孤岛检测方法(IDM)是为具有电流控制接口的基于逆变器的分布式发电系统(DGS)设计的。此类策略几乎无法扩展到具有电源控制接口的DGS,因为电源控制环路会通过扩大非检测区(NDZ)来影响IDM。本文针对具有功率控制接口的DGS提出了一种基于负序功率注入的有源IDM。与IDM结合使用,DGS的功率控制可通过两个控制回路实现。一种是满足常规功率控制要求的正序功率环路。另一个是用于孤岛检测的负序功率/电流变化环路。正序和负序通过基于全数字锁相环的简单策略分开。由于电网阻抗和本地负载阻抗之间的差异,在公共耦合点的电压不平衡百分比(VI)用于指示孤岛运行。对于并网的DGS,VI由电网电压决定,该常数是一个常数。如果DGS与电网断开,则VI由注入的负序功率/电流确定。本文还分析了具有不同系统配置(如电网阻抗,负载质量因数等)的所提方案的NDZ。通过周期性地注入负序功率/电流,可以进一步缓解由于电网电压或局部负载不平衡而导致的NDZ。对于多DGS,如果与常规的欠频/过频保护策略结合使用,IDM仍然有效。仿真和实验结果验证了IDM的有效性。

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