基于滑动窗口FFT算法的电网跟随逆变器宽带自适应谐波抑制策略

Xinxin Fu, Xing Zhang, Feng Han, Jilei Wang, Mengze Wu, Zixuan Guo
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引用次数: 0

摘要

光伏新能源发电技术发展迅速,电网中非线性器件的增加导致渗透率快速增长。电网呈现出谐波频率的宽带变化和弱电网特性。谐波电流和谐波电压通过较大的电网阻抗相互作用产生,加剧了并网系统谐波共振的风险。并网逆变器作为关键设备,应具有快速、准确的并网信号采集能力。如果逆变器谐波抑制策略具有特定的结构和参数,将不能适应谐波频率降低和谐波含量变化的情况,从而加剧弱电网下的不稳定性。针对上述不稳定性问题,本文提出了一种基于滑动窗口FFT算法的宽带自适应谐波抑制策略。滑动窗口FFT算法能够以较高的速率实时获取网格点变化的多谐波信息。谐波抑制策略的结构和参数可以随着所获得的多谐波信息自适应变化,并且不影响除谐波频率外的其他频率的控制特性。从而保证了逆变器在弱电网条件下的谐波抑制能力。最后,通过两种工况下的仿真实验验证了该策略的合理性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Broadband Adaptive Harmonic Resonance Suppression Strategy based on the Sliding-Window FFT Algorithm for the Grid-following Inverter
The photovoltaic new energy power generation technology has developed rapidly, the increase of nonlinear devices in the electric grid leads to rapid permeability growth. The power grid presents the broadband variation of harmonic frequency and weak grid characteristics. The Harmonic current and harmonic voltage interact and generate each other through large power grid impedance, aggravating the risk of harmonic resonance in grid-connected systems. As the critical equipment, the grid-connected inverter should have the ability to fast and accurate grid signal acquisition. If the inverter harmonic suppression strategy has a particular structure and parameters, it will not be able to adapt to the situation of decreasing the harmonic frequency and changing harmonic content, thus aggravating the instability under the weak grid. This paper proposes a broadband adaptive harmonic resonance suppression strategy based on a sliding-window FFT algorithm to solve the above instability issues. The sliding-window FFT algorithm can obtain the multi-harmonic information with changing grid points in real-time at a higher rate. The structure and parameters of the harmonic resonance suppression strategy can adaptively change with the obtained multi-harmonic information, and it does not affect the control characteristics at other frequencies except harmonic frequency. Therefore, the harmonic suppression ability of the inverter under the weak grid is ensured. Finally, the rationalization of the strategy is validated through simulation experiments under two working conditions.
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