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Fundamental impedance identification method for grid-connected voltage source inverters

机译:并网电压源逆变器的基本阻抗识别方法

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Considering the importance of line fundamental impedance from the inverter to the point of common coupling (PCC) in microgrids, this study analyses the influence of fundamental impedance on system stability. Line fundamental impedance values not only apply to decoupled droop control, which can realise accurate control between active and reactive power, but also regulate the droop coefficient to eliminate system circulation, realise power sharing and improve system stability when a multi-distributed generation system operates in parallel. Moreover, the PCC can sense grid fault on the basis of variations in fundamental impedance. A novel fundamental impedance identification method that adopts a constant power control strategy by varying the active and reactive powers in the grid-connected mode is proposed. In addition, the proposed method has online real-time calculation capability. This strategy has been tested in simulation and in experiments by using a scaled laboratory prototype. Simulation and experimental results verify the accuracy of the proposed scheme.
机译:考虑到从逆变器到微电网中公共耦合点(PCC)的线路基本阻抗的重要性,本研究分析了基本阻抗对系统稳定性的影响。线路基本阻抗值不仅适用于解耦下垂控制,可以实现有功功率和无功功率之间的精确控制,还可以调节下垂系数以消除系统循环,实现功率分配并提高系统的稳定性(当多分散发电系统运行时)。平行。此外,PCC可以根据基本阻抗的变化来检测电网故障。提出了一种新颖的基本阻抗识别方法,该方法通过在并网模式下改变有功和无功采用恒定功率控制策略。另外,该方法具有在线实时计算能力。通过使用规模化的实验室原型,该策略已在仿真和实验中进行了测试。仿真和实验结果验证了该方案的准确性。

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