Robust Band-Pass Filter-Based PLL-Less Approach for Three-Phase Nonsinusoidal Grid Conditions

Manish Kumar;Anant Kumar Verma;Claudio Burgos-Mellado;Raj Kumar Jarial;Ravinder Nath;Bhumaiah Jula;Diego Muñoz-Carpintero;Catalina González-Castaño;Pedro Roncero-Sánchez
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Abstract

The performance enhancement of an inverter-based grid-connected system necessitates a fast and accurate dynamic response in terms of estimating three-phase grid voltage attributes. The synchronous reference frame phase-locked loop (PLL) and/or the frequency-locking (i.e., frequency-locked loop) approaches are widely used in practical applications. However, due to the phase/frequency feedback loops, the aforementioned parameter estimation schemes may experience instability and provide a slow dynamic response. This work presents a PLL-less grid synchronization solution for three-phase applications to counter the slower dynamic response and demonstrate better immunity against the nonideality of a three-phase grid. In order to remove even and odd-order harmonics and extract the fundamental frequency positive sequence (FFPS), the proposed method employs a combination of band pass filters (CBPFs). Additionally, a novel frequency estimation algorithm is developed, which accurately estimates the angular three-phase grid frequency. Furthermore, the phase angle and amplitude are adaptively estimated using an off-line error-resolving approach, which is derived from the transfer function of the proposed prefiltering solution. Finally, the experimental findings validate the robustness of the current proposal.
基于稳健带通滤波器的无 PLL 方法,适用于三相非正弦电网条件
要提高基于逆变器的并网系统的性能,就必须在估算三相电网电压属性方面做出快速准确的动态响应。同步参考框架锁相环 (PLL) 和/或频率锁定(即锁频环)方法在实际应用中得到了广泛应用。然而,由于存在相位/频率反馈回路,上述参数估计方案可能会出现不稳定性,动态响应速度较慢。本研究针对三相应用提出了一种无锁相环的电网同步解决方案,以解决动态响应速度较慢的问题,并更好地抵御三相电网的不稳定性。为了消除偶阶和奇阶谐波并提取基频正序列 (FFPS),所提出的方法采用了带通滤波器 (CBPF) 组合。此外,还开发了一种新型频率估算算法,可准确估算三相电网的角频率。此外,还使用离线误差解决方法对相位角和振幅进行自适应估算,该方法源自所提出的预滤波解决方案的传递函数。最后,实验结果验证了当前建议的稳健性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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