基于模块化多电平换流器的多端柔性直流系统接地方式

邓旭,沈扬,王东举,周浩1

电力建设 ›› 2014, Vol. 35 ›› Issue (3) : 24-30.

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电力建设 ›› 2014, Vol. 35 ›› Issue (3) : 24-30. DOI: 10.3969/j.issn.1000-7229.2014.03.005
多端柔性直流输电技术专栏

基于模块化多电平换流器的多端柔性直流系统接地方式

  • 邓旭1,沈扬2,王东举1,周浩1
作者信息 +

Grounding Methods of Multi-Terminal VSC-HVDC System Based on Modular Multi-level Converter

  •  
    DENG Xu1, SHEN Yang2, WANG Dongju1, ZHOU Hao1 
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文章历史 +

摘要

对舟山多端柔性直流输电系统的接地方式进行了研究,确定了各换流站应采取的接地方式,其中定海和岱山换流站推荐联结变阀侧采用星形电抗+中性点电阻接地的方式,衢山、洋山和泗礁换流站推荐采用Y/Y型联结变+阀侧绕组中性点电阻接地方式。在确定各换流站接地方式的基础上,计算确定了换流站设备的过电压和绝缘水平,其中定海和岱山换流站联结变网侧为220 kV交流系统,推荐的设备雷电冲击绝缘水平为950 kV,其他三站联结变网侧为110 kV交流系统,推荐的设备雷电冲击绝缘水平为450 kV;五端换流站联结变阀侧及直流侧的额定电压基本一致,联结变阀侧交流母线的雷电和操作冲击绝缘水平推荐为650 kV(或750 kV)和550 kV,200 kV直流母线的雷电和操作冲击绝缘水平推荐为650 kV(或750 kV)和550 kV。

Abstract

The grounding methods for multi-terminal voltage source converter based high voltage direct current (VSC-HVDC) transmission system in Zhoushan were researched, and the grounding method for each converter station was determined, in which star ground reactance with neutral grounding resistor were recommended for Dinghai and Daishan converter station, while Y/Y converter transformer with neutral grounding resistor were recommended for Qushan, Yangshan and Sijiao converter station. On this basis, the overvoltage and insulation levels of converter station equipments were calculated. For Dinghai and Daishan converter station, the rated voltage of equipment at the ac side of the converter transformer is 220 kV, the lightning impulse insulation level for equipments at this zone are 950 kV. For the other three stations, the rated voltage is 110 kV, the lightning impulse insulation level is 450 kV; the insulation level of lightning impulse and that of switching impulse for AC equipment at the valve side of the transformer are 650 kV (or 750 kV) and 550 kV; insulations for 200 kV DC polar line are suggested to 650 kV (or 750 kV) and 550 kV respectively. 

关键词

模块化多电平换流器(MMC) / 多端柔性直流 / 换流站 / 接地方式 / 过电压 / 绝缘水平

Key words

modular multi-level converter (MMC) / multi-terminal voltage source converter based high voltage direct current (VSC-HVDC) / converter station / grounding method / overvoltage / insulation level

引用本文

导出引用
邓旭,沈扬,王东举,周浩1. 基于模块化多电平换流器的多端柔性直流系统接地方式[J]. 电力建设. 2014, 35(3): 24-30 https://doi.org/10.3969/j.issn.1000-7229.2014.03.005
DENG Xu, SHEN Yang, WANG Dongju, ZHOU Hao. Grounding Methods of Multi-Terminal VSC-HVDC System Based on Modular Multi-level Converter[J]. Electric Power Construction. 2014, 35(3): 24-30 https://doi.org/10.3969/j.issn.1000-7229.2014.03.005

参考文献

 

[1]胡静,赵成勇,翟晓萌.适用于MMC多端高压直流系统的精确电压裕度控制[J].电力建设,2013,34(4):1-7. 
[2]周浩,沈扬,李敏,等.舟山多端柔性直流输电工程换流站绝缘配合[J].电网技术,2013,37(4):879-890. 
[3]Weixing L,Boon-Tech O.DC overvoltage control during loss of converter in multiterminal voltage-source converter-based HVDC (M-VSC-HVDC)[J].IEEE Transactions on Power Delivery,2003,18(3):915-920. 
[4]Hongbo J,Ekstrom A.Multiterminal HVDC systems in urban areas of large cities[J].IEEE Transactions on Power Delivery,1998,13(4):1278-1284. 
[5]胡航海,李敬如,杨卫红,等.柔性直流输电技术的发展与展望[J].电力建设,2011,32(5):62-66. 
[6]汤广福,贺之渊,腾乐天,等.电压源换流器高压直流输电技术最新研究进展[J].电网技术,2008,32(22):39-44,89. 
[7]马为民,蒋维勇,李亚男.大连柔性直流输电工程的系统设计[J].电力建设,2013,34(5):1-5. 
[8]丁冠军,汤广福,丁明,等.新型多电平电压源换流器模块的拓扑机制与调制策略[J].中国电机工程学报,2009,29(36):1-8. 
[9]韦延方,卫志农,孙国强,等.适用于电压源换流器型高压直流输电的模块化多电平换流器最新研究进展[J].高电压技术,2012,38(5):1243-1250. 
[10]乔卫东,毛颖科.上海柔性直流输电示范工程综述[J].华东电力,2011,39(7):1137-1140. 
[11]汤广福.高压直流输电装备核心技术研发及工程化[J].电网技术,2012,36(1):1-6. 
[12]Teeuwsen S P.Modeling the Trans Bay Cable Project as voltage-sourced converter with modular multi-level converter design[C]//Power and Energy Society General Meeting.San Diego,CA:IEEE,2011:1-8. 
[13]王姗姗,周孝信,汤广福,等.交流电网强度对模块化多电平换流器HVDC运行特性的影响[J].电网技术,2011,35(2):17-24. 
[14]赵成勇,陈晓芳,曹春刚,等.模块化多电平换流器HVDC直流侧故障控制保护策略[J].电力系统自动化,2011,35(23):82-87. 
[15]杨杰,郑健超,汤广福,等.电压源换相高压直流输电系统接地方式设计[J].中国电机工程学报,2010,30(19):14-19. 
[16]朱艺颖.多个特高压直流系统共用接地极的研究[J].电网技术,2007,31(10):22-27. 
[17]Deng Xu,Wang Dongju,Zhou Hao,et al.Insulation coordination of ±800 kV UHVDC Xiluodu converter station[J].High Voltage Engineering,2012,38(12):3198-3205. 
[18]彭畅,温家良,马国华,等.特高压直流输电系统中直流转换开关的电流转换分析与仿真[J].中国电机工程学报,2011,31(36):1-7. 
[19]管敏渊,徐政.两电平VSC-HVDC系统直流侧接地方式选择[J].电力系统自动化,2009,33(5):55-60. 
[20]杨光亮,邰能灵,郑晓冬,等.±800 kV特高压直流输电控制保护系统分析[J].高电压技术,2012,38(12):3277-3283. 
[21]张雪松,黄莉.基于PSCAD/EMTDC的变压器直流偏磁仿真研究[J].电力系统保护与控制,2012,40(19):78-84. 
[22]杨永明,刘行谋,陈涛,等.特高压直流输电接地极附近的土壤结构对变压器直流偏磁的影响[J].电网技术,2012,36(7):26-32. 
[23]李长云,李庆民,李贞,等.基于双重保护拓扑的变压器直流偏磁抑制措施[J].电力自动化设备,2012,32(1):71-75. 

[24]GB/T 311.3—2007 绝缘配合第3部分:高压直流换流站绝缘配合程序[S].


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