基于接地变压器绕组分级调节的配电网对地电容精确测量方法
CSTR:
作者:
通讯作者:

吴丽芳(1984—),女,硕士,高级工程师,主要从事配网自动化、电力电子研究;E-mail:wu_lf@gx.csg.cn

中图分类号:

TM76

基金项目:

广西电网有限责任公司科技项目(ZBKJXM20190061)


Accurate measurement method of distribution network-to-ground capacitance based on graded adjustment of grounding transformer windings
Author:
  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [16]
  • | | | |
  • 文章评论
    摘要:

    传统配电网对地电容测量方法受中性点接地方式的影响较大,且无法消除消谐电阻和电压互感器内阻抗对测量精度的影响。为此,提出一种不受中性点接地方式影响的配电网对地电容精确测量方法,利用配电网外接特制的带有分接抽头的Y/△接线接地变压器,通过调节接地变压器高压侧绕组接地抽头到较低档位来确保配电网零序电压在规定偏移值内变化,并通过测量得到所需零序电压和零序电流,得到系统对地电容;并在PSCAD/EMTDC仿真环境中对所提的对地电容测量方法进行仿真分析,分析结果表明:该方法测量精度高,且对地电容电流测量过程具有安全、简便、经济的特点。

    Abstract:

    The traditional measurement method of distribution network grounding capacitance is greatly affected by the neutral grounding mode, and cannot eliminate the influence of harmonic elimination resistance and internal impedance of voltage transformer on the measurement accuracy. For this reason, an accurate measurement method of distribution network grounding capacitance that is not affected by the neutral point grounding mode is proposed. By using the Y/△ connection grounding transformer with tap connected externally to the distribution network, the zero sequence voltage of the distribution network is ensured to change within the specified offset value by adjusting the grounding tap of the high voltage side winding of the grounding transformer to a lower gear, and the required zero sequence voltage and current are measured to obtain the system grounding capacitance. The proposed method is simulated and analyzed in PSCAD/EMTDC simulation environment. The analysis results show that the method has high measurement accuracy, and the measurement process of grounding capacitance is safe, simple and economical.

    参考文献
    [1] 要焕年,曹梅月.电力系统谐振接地[M].北京:中国电力出版社,2009:34-36.
    [2] 陈子辉,麦荣焕,倪惠浩,等.计及电能质量因素的变压器能效分析[J].供用电,2020,37(5):64-72.CHEN Zihui,MAI Ronghuan,NI Huihao,et al.Energy efficiency analysis of transformers considering power quality factors[J].Distribution & Utilization,2020,37(5):64-72.
    [3] 谭振龙,钱相宜,蔡文畅.配置高抗站的海上风电长距离海缆送出继电保护分析[J].中国电力,2021,54(8):175-181.TAN Zhenlong,QIAN Xiangyi,CAI Wenchang.Analysis of relay protection for offshore wind power long-distance submarine cable transmission with high resistance station[J].Electric Power,2021,54(8):175-181.
    [4] 代双寅,刘书铭,赵麒哲,李琼林.基于CVT电容电流的谐波电压测量方法[J].电力系统保护与控制,2020,48(20):141-147.DAI Shuangyin,LIU Shuming,ZHAO Qizhe,et al.A harmonic voltage measurement method based on CVT capacitor current[J].Power System Protection and Control,2020,48(20):141-147.
    [5] 张姗,梁志瑞,张丽芳,等.一种谐振接地系统电容电流测量新方法[J].电力科学与技术学报,2020,35(1):109-114.ZHANG Shan,LIANG Zhirui,ZHANG Lifang,et al.A new capacitor current measurement method for resonance grounding system[J].Journal of Electric Power Science and Technology,2020,35(1):109-114.
    [6] 盛能进,张文嘉,彭竹弈,等.改善关键线路潮流问题的可控串联补偿装置研究[J].高压电器,2020,56(1):148-154.SHENG Nengjin,ZHANG Wenjia,PENG Zhuyi,et al.Research on the controllable series compensation device to improve the power flow problem of key transmission Lines[J].High Voltage Apparatus,2020,56(1):148-154.
    [7] 黎新吉,张平,陈博,等.中性点不接地配电网电容电流在线测量方法比较[J].电力科学与技术学报,2008,23(2):66-71.LI Xinji,ZHANG Ping,CHEN Bo,et al.Capacitive current on-line measurement methods comparing for unearthed distribution systems[J].Journal of Electric Power Science and Technology,2008,23(2):66-71.
    [8] 王必平.中压电网中性点接地方式的研究[D].青岛:中国石油大学,2010.
    [9] 王庆军,王贻平,朱胜龙,等.配电系统电容电流的测量[J].工程与建设,2016,30(2):161-162+177.WANG Qingjun,WANG Yiping,ZHU Shenglong,et al.Measurement of capacitive current in distribution sys-tem[J].Engineering and Construction,2016,30(2):161-162+177.
    [10] 赵宪,章彪,刘海龙.配电线路电容电流测量方法比较[J].山东电力技术,2017,44(7):43-47.ZHAO Xian,ZHANG Biao,LIU Hailong.Comparison on frequently-used methods of capacitive current measurement on power distribution lines[J].Shandong Electric Power,2017,44(7):43-47.
    [11] 曾祥君,易文韬,刘张磊,等.注入信号精确谐振测量配电网电容电流新技术[J].电力系统自动化,2008,32(4):77-80.ZENG Xiangjun,YI Wentao,LIU Zhanglei,et al.A novel technique of capacitive current resonance measurement with signal injected for distribution networks[J].Automation of Electric Power Systems,2008,32(4):77-80.
    [12] 王国友,邢亮,李伟霞,等.一种新型的电容电流在线测量系统设计[J].电测与仪表,2020,57(5):142-147.WANG Guoyou,XING Liang,LI Weixia,et al.A novel design scheme for the online measurement system of capacitance current[J].Electrical Measurement & Instrumentation,2020,57(5):142-147.
    [13] 周求宽,姚骏,刘衍,等.基于三频率法的配电网电容电流测量新方法[J].电测与仪表,2017,54(10):44-49.ZHOU Qiukuan,YAO Jun,LIU Yan,et al.A new method to measure capacitance current in distribution network based on three-frequency method[J].Electrical Measurement & Instrumentation,2017,54(10):44-49.
    [14] 卓超,曾祥君,喻锟,等.基于双电压互感器的中性点不接地配电网对地参数实时测量新技术[J].电网技术,2020,44(7):2657-2664.ZHUO Chao,ZENG Xiangjun,YU Kun,et al.A novel real-time measurement technique of grounded parameters of dual voltage transformers in neutral point ungrounded distribution networks[J].Power System Technology,2020,44(7):2657-2664.
    [15] 曾祥君,卓超,喻锟,等.基于接地变压器绕组分档调压干预的配电网主动降压消弧与保护新方法[J].中国电机工程学报,2020,40(5):1523-1534.ZENG Xiangjun,ZHUO Chao,YU Kun,et al.A novel method of faults arc extinguishing and feeder protection based on voltage regulating intervention with grounding transformer winding taps for distribution networks[J].Proceedings of the CSEE,2020,40(5):1523-1534.
    [16] 李泽文,曾祥君,夏翊翔,等.高压交流输电线路故障行波定位技术综述[J].长沙理工大学学报(自然科学版),2022,19(3):104-121.LI Zewen,ZENG Xiangjun,XIA Yixiang,et al.Review of traveling wave fault location technology for high voltage AC transmission lines[J].Journal of Changsha University of Science & Technology(Natural Science),2022,19(3):104-121.
    相似文献
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

吴丽芳,白浩,欧阳健娜,等.基于接地变压器绕组分级调节的配电网对地电容精确测量方法[J].电力科学与技术学报,2022,37(5):109-114.
Wu Lifang, Bai Hao, OUYANG Jianna, et al. Accurate measurement method of distribution network-to-ground capacitance based on graded adjustment of grounding transformer windings[J]. Journal of Electric Power Science and Technology,2022,37(5):109-114.

复制
分享
文章指标
  • 点击次数:228
  • 下载次数: 750
  • HTML阅读次数: 0
  • 引用次数: 0
历史
  • 在线发布日期: 2022-12-01
文章二维码