Subsequent Commutation Failure Suppression Considering Negative-Sequence Voltage Caused by Symmetrical Fault at AC Side of Inverter

IF 6.1 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Modern Power Systems and Clean Energy Pub Date : 2024-10-04 DOI:10.35833/MPCE.2024.000352
Shenghu Li;Yikai Li
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Abstract

The negative-sequence voltage is often caused by the asymmetrical fault in the AC system, as well as the harmonics after the symmetrical fault at the AC side of inverter in line commutated converter based high-voltage DC (LCC-HVDC). The negative-sequence voltage affects the phase-locked loop (PLL) and the inverter control, thus the inverter is vulnerable to the subsequent commutation failure (SCF). In this paper, the analytical expression of the negative-sequence voltage resulting from the symmetrical fault with the commutation voltage is derived using the switching function and Fourier decomposition. The analytical expressions of the outputs of the PLL and inverter control with respect to time are derived to quantify the contribution of the negative-sequence voltage to the SCF. To deal with the AC component of the input signals in the PLL and the inverter control due to the negative-sequence voltage, the existing proportional-integral controls of the PLL, constant current control, and constant extinction angle control are replaced by the linear active disturbance rejection control against the SCF. Simulation results verify the contributing factors to the SCF. The proposed control reduces the risk of SCF and improves the recovery speed of the system under different fault conditions.
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考虑到逆变器交流侧对称故障引起的负序电压,抑制后续换向故障
在基于线路换向变换器的高压直流(lc - hvdc)中,负序电压通常是由交流系统的不对称故障以及逆变器交流侧对称故障后的谐波引起的。负序电压影响锁相环(PLL)和逆变器的控制,因此逆变器容易受到后续换相故障(SCF)的影响。本文利用开关函数和傅里叶分解,导出了对称故障产生的负序电压与换相电压的解析表达式。推导了锁相环和逆变器控制输出与时间有关的解析表达式,以量化负序电压对SCF的贡献。为了解决锁相环中输入信号的交流分量和逆变器控制由于负序电压的影响,现有的锁相环比例积分控制、恒流控制和恒消角控制被针对SCF的线性自抗扰控制所取代。仿真结果验证了SCF的影响因素。该控制方法降低了SCF的风险,提高了系统在不同故障条件下的恢复速度。
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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来源期刊
Journal of Modern Power Systems and Clean Energy
Journal of Modern Power Systems and Clean Energy ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
12.30
自引率
14.30%
发文量
97
审稿时长
13 weeks
期刊介绍: Journal of Modern Power Systems and Clean Energy (MPCE), commencing from June, 2013, is a newly established, peer-reviewed and quarterly published journal in English. It is the first international power engineering journal originated in mainland China. MPCE publishes original papers, short letters and review articles in the field of modern power systems with focus on smart grid technology and renewable energy integration, etc.
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