论文:2022,Vol:40,Issue(6):1343-1351
引用本文:
周翔宇, 张震, 马瑞卿, 巫春玲, 卢勇, 相里康, 王丹青. 智能电网融合下基于FFCD-SOGI-PLL的电网状态估计[J]. 西北工业大学学报
ZHOU Xiangyu, ZHANG Zhen, MA Ruiqing, WU Chunling, LU Yong, XIANGLI Kang, WANG Danqing. State estimation of power grid under smart grid integration based on FFCD-SOGI-PLL[J]. Journal of Northwestern Polytechnical University

智能电网融合下基于FFCD-SOGI-PLL的电网状态估计
周翔宇1, 张震1, 马瑞卿2, 巫春玲1, 卢勇1, 相里康1, 王丹青2
1. 长安大学 能源与电气工程学院, 陕西 西安 710064;
2. 西北工业大学 自动化学院, 陕西 西安 710129
摘要:
在智能电网与新能源发电融合背景下,电力电子接口装置的大量使用将给系统引入额外的直流偏置。因此,电网电压信息获取算法的直流偏置抑制能力变得至关重要。二阶广义积分器锁相环(SOGI-PLL)广泛应用于电网信息的同步与提取,可以有效抑制频率波动和相位跳变对电网状态估计精度的影响,但其自适应频率反馈环节在实现谐波抑制的同时 ,对于电网中含有的直流偏置非常敏感。针对这一问题,提出了一种固定频率反馈的级联SOGI-PLL(FFCD-SOGI-PLL),使用级联结构输入固定电网标称频率,实现信号直流分量滤除,增强了谐波抑制性能。通过小信号模型给出其稳定性分析和参数设计方法。实验结果表明,在电网电压含有直流分量、谐波以及电网电压跌落时,设计的FFCD-SOGI-PLL可以快速稳定地对电网电压状态信息进行精确估计。
关键词:    电网同步    锁相环    二阶广义积分器    直流偏置抑制   
State estimation of power grid under smart grid integration based on FFCD-SOGI-PLL
ZHOU Xiangyu1, ZHANG Zhen1, MA Ruiqing2, WU Chunling1, LU Yong1, XIANGLI Kang1, WANG Danqing2
1. School of Energy and Electrical Engineering, Chang'an University, Xi'an 710064, China;
2. School of Automation, Northwestern Polytechnical University, Xi'an 710129, China
Abstract:
In the context of the integration smart grid and new energy generation, the extensive use of power electronic interface devices will introduce additional DC bias to the system. Therefore, the DC bias suppression capability of the grid voltage information acquisition algorithm becomes crucial. The second-order generalized integrator phase-locked loop(SOGI-PLL), which is widely used in the synchronization and extraction of power grid information, can effectively suppress the influence of frequency fluctuations and phase jumps in the power grid on the power grid state estimation accuracy, but its adaptive frequency feedback link while achieving harmonic suppression, it is very sensitive to the DC bias contained in the grid. Aiming at this problem, this paper proposes a cascaded SOGI-PLL with fixed frequency feedback(FFCD-SOGI-PLL), which uses a cascade structure and inputs a fixed nominal frequency of the power grid to filter the DC component of the signal and enhance the harmonics inhibit performance is enhanced. The stability analysis and parameter design methods are given by the small signal model. The experimental results show that the designed FFCD-SOGI-PLL can quickly and stably estimate the grid voltage state information accurately when the grid voltage contains DC components, harmonics and grid voltage drops.
Key words:    power grid synchronization    PLL    second-order generalized integrator    DC offset suppression   
收稿日期: 2022-03-03     修回日期:
DOI: 10.1051/jnwpu/20224061343
基金项目: 国家重点研发计划(2019YFB1600800)、陕西省重点研发计划(2022GY-193)与陕西省科技计划(2019JQ-678,2021JQ-251)资助
通讯作者: 张震(1986—),长安大学讲师,主要从事电力电子建模与控制。e-mail:zhenzhang@chd.edu.cn     Email:zhenzhang@chd.edu.cn
作者简介: 周翔宇(1998—),长安大学硕士研究生,主要从事电力电子与电气传动研究
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参考文献:
[1] 张纯江, 赵晓君, 郭忠南, 等. 二阶广义积分器的三种改进结构及其锁相环应用对比分析[J]. 电工技术学报, 2017, 32(22):42-49 ZHANG Chunjiang, ZHAO Xiaojun, GUO Zhongnan, et al. Three improved second order generalized integrators and the comparative analysis in phase locked loop application[J]. Transactions of China Electro Technical Society, 2017, 32(22):42-49 (in Chinese)
[2] 张智刚, 康重庆. 碳中和目标下构建新型电力系统的挑战与展望[J]. 中国电机工程学报,2022, 42(8):2806-2819 ZHANG Zhigang, KANG Chongqing. Challenges and prospects for constructing the new-type power system towards a carbon neutrality future[J]. Proceedings of the CSEE, 2022, 42(8):2806-2819 (in Chinese)
[3] 李林, 郭源博, 张晓华. 复杂电网工况下基于CDSOGI-SPLL的电网电压同步方法[J]. 电力系统自动化, 2017, 41(16):151-157 LI Lin, GUO Yuanbo, ZHANG Xiaohua. Grid voltage synchronization method based on CDSOGI-SPLL under complex power grid conditions[J]. Automation of Electric Power Systems, 2017, 41(16):151-157 (in Chinese)
[4] 吕世轩, 郑丽君, 王子鹏, 等. 一种穿越频率自适应的四阶广义积分锁频环[J]. 电网技术,2021,45(10):4142-4151 LYU Shixuan, ZHENG Lijun, WANG Zipeng, et al. A fourth-order generalized integrator frequency-locked loop with crossover frequency adaptation[J]. Power System Technology, 2021, 45(10):4142-4151 (in Chinese)
[5] 刘森, 黄毕尧, 王聪, 等. 超级谐波研究综述[J]. 电测与仪表, 2017, 54(12):7-15 LIU Sen, HUANG Biyao, WANG Cong, et al. A summary of super harmonic research[J]. Electrical Measurement and Instrumentation, 2017, 54(12):7-15 (in Chinese)
[6] HACKL C M, LANDERER M. Modified second-order generalized integrators with modified frequency locked loop for fast harmonics estimation of distorted single-phase signals[J]. IEEE Trans on Power Electronics, 2020, 35(3):3298-3309
[7] GOLESTAN S, GUERRERO J M, VASQUEZ J C. Single-phase PLLs:a review of recent advances[J]. IEEE Trans on Power Electronics, 2017, 32(12):9013-9030
[8] GOLESTAN S, GUERRERO J M, MUSAVI F, et al. Single-phase frequency-locked loops:a comprehensive review[J]. IEEE Trans on Power Electronics, 2019, 34(12):11791-11812
[9] GOLESTAN S, GUERRERO J M, ABUSORRAH A, et al. An adaptive quadrature signal generation-based single-phase phase-locked loop for grid-connected applications[J]. IEEE Trans on Industrial Electronics, 2017, 64(4):2848-2854
[10] WANG X, BLAABJERG F. Harmonic stability in power electronic-based power systems:concept, modeling, and analysis[J]. IEEE Trans on Smart Grid, 2019, 10(3):2858-2870
[11] GOLESTAN S, MONFARED M, FREIJEDO F D, et al. Dynamics assessment of advanced single-phase PLL structures[J]. IEEE Trans on Industrial Electronics, 2013, 60(6):2167-2177
[12] 贝太周, 王萍, 张博文. 单相αβ PLL方案中正交信号发生器的性能比较[J]. 电源学报, 2018, 16(3):91-98 BEI Taizhou, WANG Ping, ZHANG Bowen. Performance comparison between quadrature signal generators in single-phase αβ PLL schemes[J]. Journal of Power Supply, 2018, 16(3):91-98
[13] KARIMI-GHARTEMANI M, KHAJEHODDIN S A, JAIN P K, et al. Addressing DC component in PLL and notch filter algorithms[J]. IEEE Trans on Power Electronics, 2012, 27(1):78-86
[14] ZHANG C, ZHAO X, WANG X, et al. A grid synchronization PLL method based on mixed second- and third-order generalized integrator for DC offset elimination and frequency adaptability[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2018, 6(3):1517-1526
[15] XIN Z, WANG X, QIN Z, et al. An improved second-order generalized integrator based quadrature signal generator[J]. IEEE Trans on Power Electronics, 2016, 31(12):8068-8073
[16] KULKARNI A, JOHN V. Design of a fast response time single-phase PLL with DC offset rejection capability[C]//2016 IEEE Applied Power Electronics Conference and Exposition, 2016
[17] XIAO F, DONG L, LI L, et al. A frequency-fixed SOGI-based PLL for single-phase grid-connected converters[J]. IEEE Trans on Power Electronics, 2017, 32(3):1713-1719
[18] GOLESTAN S, MOUSAZADEH S Y, GUERRERO J M, et al. A critical examination of frequency-fixed second-order generalized integrator-based phase-locked loops[J]. IEEE Trans on Power Electronics, 2017, 32(9):6666-6672
[19] 国家技术监督局. 电能质量电力系统频率偏差[S]. GB/T 15945-2008
[20] 中华人民共和国国家质量监督检验检疫总局. 电能质量电压暂降与短时中断[S]. GB/T 30137-2013
[21] 中华人民共和国国家质量监督检验检疫总局. 电能质量公用电网谐波[S]. GB/T 14549-1993
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