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Adaptive Optimization of Current-Control Loop for Grid-Connected Inverters

机译:并网逆变器电流控制环的自适应优化

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The amount of grid-connected power electronics is rapidly increasing and their effect to power quality becomes important especially in areas with high penetration levels. In weak grids with significant grid impedance, the inverter control performance usually decreases and the impedance-based stability issues may arise. A method to analyze the stability issues and to improve the inverter control performance is to consider the grid as a load effect in the small-signal model of the grid-connected inverter. Studies have shown that the bandwidth of the inverter current-control loop decreases in the weak grids through the load effect, and consequently, the controller ability to mitigate harmonics is weakened. This work introduces an adaptive method that keeps the bandwidth of the control loop constant under varying grid conditions. Additionally, an adaptive Notch filter is added into the current-control loop in order to avoid possible stability issues caused by the interactions with the LC-filter resonance and the grid impedance. Improved control performance and stability under various grid conditions are demonstrated through power hardware-in-the-loop tests with a kW-scale three-phase inverter.
机译:并网型电力电子设备的数量正在迅速增加,并且它们对电能质量的影响变得尤为重要,尤其是在具有高渗透水平的地区。在电网阻抗很高的弱电网中,逆变器控制性能通常会下降,并且可能会出现基于阻抗的稳定性问题。一种分析稳定性问题并改善逆变器控制性能的方法是在并网逆变器的小信号模型中将电网视为负载效应。研究表明,在弱电网中,由于负载效应,逆变器电流控制环路的带宽会减小,因此,控制器减轻谐波的能力也会减弱。这项工作引入了一种自适应方法,可以在变化的电网条件下保持控制环路的带宽恒定。此外,在电流控制环路中添加了一个自适应陷波滤波器,以避免由与LC滤波器谐振和电网阻抗的相互作用引起的可能的稳定性问题。通过用千瓦级三相逆变器进行的功率硬件在环测试,证明了在各种电网条件下改善的控制性能和稳定性。

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