Fusion fault line selection method of small current grounding fault based on VMD
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摘要: 针对目前煤矿配电网故障选线方法在相关故障特征不明显时存在故障选线失效,基于单一模态分量和单一故障特征的故障选线方法的选线准确度较低等问题,提出了一种基于变分模态分解(VMD)的小电流接地故障融合选线方法。利用VMD将母线中各出线的故障零序电流分解为多个模态分量,根据模态分量的故障特征确定VMD层数,并选取故障特征明显的模态分量作为故障选线的有效模态分量;分别计算各出线故障零序电流有效模态分量的暂态能量和波形相似度;根据各出线有效模态分量的暂态能量占比和波形相似度占比,构建基于暂态能量的故障选线判据和基于波形相似度的故障选线判据,并将2种故障选线判据融合,形成基于VMD的故障融合选线算法。利用电磁暂态仿真软件ATP/EMTP搭建煤矿配电网模型,在不同接地故障电阻、故障初相角和故障位置的单相接地故障场景下,对所提出的故障融合选线方法进行验证,结果表明:在配电网发生各种单相接地故障时,基于VMD的小电流接地故障融合选线方法不受故障位置的影响,较能量法和相关性聚类法的故障选线正确率分别提高了17%和50%,且不受故障类型影响,可应用于小电流接地故障选线。Abstract: At present, the fault line selection method of coal mine distribution network has the problem of fault line selection failure when the relevant fault features are not obvious. The fault line selection method based on single modal component and single fault feature has low accuracy. In order to solve the above problems, a method of small current grounding fusion fault line selection based on variational mode decomposition (VMD) is proposed. VMD is used to decompose the fault zero-sequence current of each outgoing line in the bus into multiple modal components. The layer number of the VMD is determined according to the fault features of the modal components. The modal components with obvious fault features are selected as effective modal components for fault line selection. The transient energy and the waveform similarity of the effective modal component of the zero sequence current of each outgoing line fault are calculated respectively. According to the proportion of transient energy and the proportion of waveform similarity of effective modal components of each outgoing line, a fault line selection criterion based on transient energy and a fault line selection criterion based on waveform similarity are constructed. The two fault line selection criteria are fused to form a fault fusion line selection algorithm based on VMD. A coal mine distribution network model is built by using the electromagnetic transient simulation software ATP/EMTP. The proposed fusion fault line selection method is verified under single-phase-to-ground fault scenarios with different ground fault resistances, fault initial phase angles and fault locations. The results show that when various single-phase ground faults occur in the distribution network, the fusion line selection method of small-current grounding fault based on VMD is not affected by the fault location. The fault line selection accuracy is respectively improved by 17% and 50% compared with the energy method and the correlation clustering method. The fusion line selection method is not affected by the fault type, and can be applied to the small current grounding fault line selection.
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表 1 提取IMF2分量时的故障选线数据
Table 1. Fault line selection data when extracting IMF2 component
Rg /Ω φ /(°) S2 S3 S4 故障
线路Δ22 η22 Δ23 η23 Δ24 η24 0.5 0 0.110 6 0.999 8 0.105 6 0.999 8 0.783 8 −0.999 7 S4 45 0.113 2 1.064 1 0.114 1 1.064 1 0.772 6 −1.128 2 S4 90 0.110 2 1.058 0 0.116 2 1.058 0 0.773 6 −1.115 9 S4 10 0 0.000 5 0.504 4 0.000 5 0.504 4 0.999 0 −0.008 8 S4 45 0.150 2 1.571 6 0.132 3 1.571 6 0.717 5 −2.143 2 S4 90 0.151 3 1.438 5 0.133 9 1.438 5 0.714 8 −1.876 9 S4 1 000 0 0.004 6 0.499 3 0.003 8 0.499 3 0.991 5 0.001 4 S4 45 0.000 5 −1.00 71 0.000 0 0.003 5 0.999 5 0.003 5 S4 90 0.002 4 0.094 3 0.000 2 0.452 8 0.997 4 0.452 8 无 2 000 0 0.004 7 0.498 0 0.003 9 0.498 0 0.991 4 0.004 0 S4 45 0.000 4 −1.002 3 0.000 0 0.001 1 0.999 5 0.001 1 S4 90 0.002 2 0.099 0 0.000 2 0.450 5 0.997 6 0.450 5 无 表 2 提取IMF3分量时的故障选线数据
Table 2. Fault line selection data when extracting IMF3 component
Rg /Ω φ/(°) S2 S3 S4 故障
线路Δ32 η32 Δ33 η33 Δ34 η34 1 000 90 0.147 4 1.222 6 0.104 5 1.222 6 0.748 1 −1.445 2 S4 2 000 90 0.145 8 1.183 7 0.103 7 1.183 7 0.750 5 −1.367 3 S4 表 3 不同故障位置的故障选线数据
Table 3. Fault line selection data at different fault locations
故障位置 S2 S3 S4 故障
线路Δ32 η32 Δ33 η33 Δ34 η34 f1 0.313 9 0.020 7 0.060 6 0.020 7 0.625 4 −1.041 4 S4 f2 0.132 6 1.065 9 0.067 0 1.065 9 0.800 4 −1.131 8 S7 f3 0.143 4 0.998 4 0.067 6 0.998 4 0.789 0 −0.996 9 S10 表 4 不同故障选线方法的选线结果
Table 4. Line selection results of different fault line selection methods
Rg /Ω φ/(°) 能量法 相关性聚类法 融合选线法 故障线路 选线结果 故障线路 选线结果 故障线路 选线结果 0.5 0 S4 正确 S4 正确 S4 正确 45 S4 正确 S4 正确 S4 正确 90 S4 正确 S4 正确 S4 正确 10 0 S4 正确 S4 正确 S4 正确 45 母线 错误 S4 正确 S4 正确 90 母线 错误 S4 正确 S4 正确 1 000 0 S4 正确 母线 错误 S4 正确 45 S4 正确 S2 错误 S4 正确 90 S4 正确 母线 错误 S4 正确 2 000 0 S4 正确 母线 错误 S4 正确 45 S4 正确 S2 错误 S4 正确 90 S4 正确 母线 错误 S4 正确 -
[1] 罗超,耿蒲龙,曲兵妮,等. 基于小波包的矿井供电系统单相接地故障选线方法[J]. 工矿自动化,2018,44(2):68-74.LUO Chao,GENG Pulong,QU Bingni,et al. A line selection method for single phase ground fault in coal mine power supply system based on wavelet packet[J]. Industry and Mine Automation,2018,44(2):68-74. [2] 高宏杰,赵建文,郭秀才. 煤矿电网单相漏电故障区段自动定位探索[J]. 工矿自动化,2021,47(5):106-111.GAO Hongjie,ZHAO Jianwen,GUO Xiucai. Research on automatic location of single-phase leakage fault zone in coal mine power network[J]. Industry and Mine Automation,2021,47(5):106-111. [3] 董礼清,薛永端,李娟,等. 小电流接地故障零序电压分布特征与测距[J]. 电力系统自动化,2022,46(19):180-187.DONG Liqing,XUE Yongduan,LI Juan,et al. Zero-sequence voltage distribution characteristics and locatiaon of non-solidly grounding fault[J]. Automation of Electric Power Systems,2022,46(19):180-187. [4] 刘扬,刘建功,王毅颖,等. 煤矿坚强智能电网建设理论与技术探讨[J]. 煤炭学报,2020,45(6):2296-2307.LIU Yang,LIU Jiangong,WANG Yiying,et al. Discussion on theory and technology of building robust intelligent power grid in coal mine of China[J]. Journal of China Coal Society,2020,45(6):2296-2307. [5] 程路,陈乔夫. 小电流接地系统单相接地选线技术综述[J]. 电网技术,2009,33(18):219-224.CHENG Lu,CHEN Qiaofu. A survey on faulty line selection technology for single-phase grounded transmission line in small current neutral grounded system[J]. Power System Technology,2009,33(18):219-224. [6] 周宇,汤涛,曾祥君,等. 基于零序电流幅值比倍增系数的灵活接地系统故障选线方法[J]. 电力系统保护与控制,2022,50(23):112-120.ZHOU Yu,TANG Tao,ZENG Xiangjun,et al. Fault line detection method for a flexible grounding system based on a zero-sequence current amplitude ratio multiplication coefficient[J]. Power System Protection and Control,2022,50(23):112-120. [7] 方毅,薛永端,宋华茂,等. 谐振接地系统高阻接地故障暂态能量分析与选线[J]. 中国电机工程学报,2018,38(19):5636-5645,5921.FANG Yi,XUE Yongduan,SONG Huamao,et al. Transient energy analysis and faulty feeder identification method of high impedance fault in the resonant grounding system[J]. Proceedings of the CSEE,2018,38(19):5636-5645,5921. [8] 季鹏,陈芳芳,徐天奇,等. 基于Spearman相关系数法与有功分量法的高阻接地故障选线方法研究[J]. 山东电力技术,2022,49(12):8-13,31. doi: 10.3969/j.issn.1007-9904.2022.12.002JI Peng,CHEN Fangfang,XU Tianqi,et al. Research on high-resistance grounding fault line selection method based on Spearman correlation coefficient and active component[J]. Shandong Electric Power,2022,49(12):8-13,31. doi: 10.3969/j.issn.1007-9904.2022.12.002 [9] 韦明杰,石访,张恒旭,等. 基于同步零序电流谐波群体比相的谐振接地系统高阻故障选线及区段定位方法[J]. 中国电机工程学报,2021,41(24):8358-8372.WEI Mingjie,SHI Fang,ZHANG Hengxu,et al. Feeder selection and section location of high impedance fault at resonant networks based on the phase differences between the synchronous harmonics of the zero sequence currents[J]. Proceedings of the CSEE,2021,41(24):8358-8372. [10] 樊淑娴,徐丙垠,张清周. 注入方波信号的经消弧线圈接地系统故障选线方法[J]. 电力系统自动化,2012,36(4):91-95.FAN Shuxian,XU Bingyin,ZHANG Qingzhou. A new method for fault line selection in distribution on system with arc suppression coil grounding with square-wave signal injection[J]. Automation of Electric Power Systems,2012,36(4):91-95. [11] SHI Shenxing,ZHU Beier,LEI Aoyu,et al. Fault location for radial distribution network via topology and reclosure-generating traveling waves[J]. IEEE Transactions on Smart Grid,2019,10(6):6404-6413. doi: 10.1109/TSG.2019.2904210 [12] 李聪聪,李玉敦,杨超,等. 基于序分量电压加权的双端故障定位算法研究[J]. 山东电力技术,2021,48(7):53-57,69.LI Congcong,LI Yudun,YANG Chao,et al. Research on two-terminal fault location algorithm based on weighted voltage sequence component[J]. Shandong Electric Power,2021,48(7):53-57,69. [13] 高锋阳,李昭君,袁成,等. 量子计算和免疫优化算法相结合的有源配电网故障定位[J]. 高电压技术,2021,47(2):396-406.GAO Fengyang,LI Zhaojun,YUAN Cheng,et al. Fault location for active distribution network based on quantum computing and immune optimization algorithm[J]. High Voltage Engineering,2021,47(2):396-406. [14] ZHAGN Chenyu,YUAN Xiaodong,SHI Mingming,et al. Fault location method based on SVM and similarity model matching[J]. Mathematical Problems in Engineering,2020(1):1-9. [15] 李科,随晓娜,张俊,等. 矿井电网故障选线方法研究[J]. 工矿自动化,2018,44(5):70-75.LI Ke,SUI Xiaona,ZHANG Jun,et al. Research on fault line selection method of mine power network[J]. Industry and Mine Automation,2018,44(5):70-75. [16] 原磊明,关瑞,石国栋,等. 基于EEMD与小波阈值去噪的单相接地故障选线方法[J]. 煤炭工程,2020,52(12):137-140.YUAN Leiming,GUAN Rui,SHI Guodong,et al. Line selection method for one-phase grounding fault based on EEMD and wavelet threshold denoising[J]. Coal Engineering,2020,52(12):137-140. [17] 毕胜,耿蒲龙,张建花,等. 基于CEEMD与自相关阈值去噪的单相接地故障选线方法研究[J]. 煤炭工程,2022,54(7):153-158.BI Sheng,GENG Pulong,ZHANG Jianhua,et al. Line selection method for single-phase ground fault based on CEEMD and autocorrelation threshold denoising[J]. Coal Engineering,2022,54(7):153-158. [18] 翟二杰,舒征宇,汪俊,等. 基于VMD−LSTM的小电流接地系统故障选线方法[J]. 电工电能新技术,2021,40(1):70-80.ZHAI Erjie,SHU Zhengyu,WANG Jun,et al. Fault line selection method of small current grounding system based on VMD-LSTM[J]. Advanced Technology of Electrical Engineering and Energy,2021,40(1):70-80. [19] 魏科文,张靖,何宇,等. 基于VMD和相关性聚类的谐振接地系统单相接地故障选线[J]. 电力系统保护与控制,2021,49(22):105-113.WEI Kewen,ZHANG Jing,HE Yu,et al. Single-phase grounding fault line selection in a resonant grounding system based on VMD and correlation clustering[J]. Power System Protection and Control,2021,49(22):105-113. [20] 薛永端,李娟,徐丙垠. 中性点经消弧线圈接地系统小电流接地故障暂态等值电路及暂态分析[J]. 中国电机工程学报,2015,35(22):5703-5714.XUE Yongduan,LI Juan,XU Bingyin. Transient equivalent circuit and transient analysis of single-phase earth fault in arc suppression coil grounded system[J]. Proceedings of the CSEE,2015,35(22):5703-5714. [21] 庄伟,牟龙华,童荣斌. 基于罗氏线圈二次信号的煤矿高压电网接地故障区段定位[J]. 煤炭学报,2014,39(6):1184-1190.ZHUANG Wei,MU Longhua,TONG Rongbin. Secondary signal of rogowski coil based ground fault section location in coalmine high-voltage distribution network[J]. Journal of China Coal Society,2014,39(6):1184-1190.