首页> 外文期刊>International journal of circuit theory and applications >Three-phase four-wire shunt active power filter based on the SOGI filter and Lyapunov function for DC bus control
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Three-phase four-wire shunt active power filter based on the SOGI filter and Lyapunov function for DC bus control

机译:基于Sogi滤波器和Lyapunov功能的三相四线分流电力滤波器,用于直流总线控制

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摘要

The three-phase four-wire shunt active power filter (SAPF) was developed to suppress the harmonic currents generated by nonlinear loads, and for the compensation of unbalanced nonlinear load currents, reactive power, and the harmonic neutral current. In this work, we consider instantaneous reactive power theory (PQ theory) for reference current identification based on the following two algorithms: the classic low-pass filter (LPF) and the second-order generalized integrator (SOGI) filter. Furthermore, since an important process in SAPF control is the regulation of the DC bus voltage at the capacitor, a new controller based on the Lyapunov function is also proposed. A complete simulation of the resultant active filtering system confirms its validity, which uses the SOGI filter to extract the reference currents from the distorted line currents, compared with the traditional PQ theory based on LPF. In addition, the simulation performed also demonstrates the superiority of the proposed approach, for DC bus voltage control based on the Lyapunov function, compared with the traditional proportional-integral (PI) controller. Both novel approaches contribute towards an improvement in the overall performance of the system, which consists of a small rise and settling time, a very low or nonexistent overshoot, and the minimization of the total harmonic distortion (THD).
机译:开发了三相四线分流有源电力滤光器(SAPF)以抑制非线性负载产生的谐波电流,以及补偿不平衡的非线性负载电流,无功功率和谐波中性电流。在这项工作中,我们考虑瞬时无功功率理论(PQ理论),用于基于以下两个算法的参考电流识别:经典的低通滤波器(LPF)和二阶通用积分器(Sogi)滤波器。此外,由于SAPF控制中的重要过程是电容器在电容器上的调节,因此还提出了一种基于Lyapunov函数的新控制器。与基于LPF的传统PQ理论相比,完整的有效滤波系统的有效性确认了它使用Sogi滤波器从扭曲的线路电流中提取参考电流。另外,与传统的比例积分(PI)控制器相比,所执行的模拟还展示了基于Lyapunov函数的直流母线电压控制的所提出的方法的优越性。这两种新方法都有助于改善系统的整体性能,这包括小的上升和稳定时间,非常低或不存在的过冲,以及最小化总谐波失真(THD)。

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