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Study on Overvoltage and Insulation Coordination of Grounding Pole Line for ± 800 kV UHVDC System

机译:±800 kV特高压直流输电系统接地极线的过电压与绝缘配合研究。

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The grounding pole line is an important equipment of the UHVDC transmission system. Due to the low steady state voltage of the grounding pole line during the normal operation, the grounding pole line adopts the external insulation of the 35kV AC line. However, 110kV voltage grade is used mostly for tower of the grounding pole. So the external insulation is lower. When the DC system runs out of balance, there will be overvoltage on the grounding pole line, which may cause the external insulation to be broken down. The “7.13” grounding line fault occurred in 2015 in ± 800 kV Bin-jin HVDC project. Due to the high voltage DC casing breaking down in Jinhua, the system turned directly into the unipolar operation. The overvoltage of the Yibin to Jinhua grounding line at the moment of the casing breakdown caused the insulation breakdown of the grounding electrode without causing action of the line arrester. Under the condition that the DC continuous flow can not be extinguished, the accident of grounding insulator, ground wire and conductor burning has occurred. The occurrence of “7.13” accident has exposed the overvoltage and insulation coordination design defects of the grounding electrode circuit of the HVDC system. In this paper, the “7.13” fault of ± 800 kV Yibin to Jinhua DC project was taken as the analysis object. The simulation model was established by using the power system analysis software, MATLAB Sim Power System. The internal overvoltage characteristics and distribution of the grounding circuit of the UHVDC system were analyzed. The grounding line internal overvoltage level was calculated. Analysis showed that the overvoltage inside the UHV grounding circuit was depended on grounding line length, system operation mode, outgoing arrester parameters. To inspect the grounding electrode line of the converter station, the closer the grounding position of the high voltage pole was to the inspected converter station, the higher the overvoltage of the line of the grounding electrode. For the ground electrode line overvoltage caused by the high voltage pole line grounding, it showed a gradual downward trend from the converter station to the grounding pole on the grounding electrode line. The maximum overvoltage on the grounding electrode line is often caused by grounding fault on the high voltage side when the DC system was full power. Such overvoltage is the control value for the external insulation operation of the grounding electrode line. Based on calculation results of overvoltage, the appropriate insulation configuration adjustment scheme for grounding electrode line was given. After the “7.13” fault, the SGCC made a unified adjustment for external insulation configuration of the UHVDC grounding electrode lines. Number of insulator strings on the grounding electrode line has been increased to 5 or 6 pieces from 3 or 4 pieces. Distance of the insulator parallel gap was increased to 68cm from 20cm. Thus the problem was avoided that the MOA on the grounding conductor outlet could not protect the external insulation. The conclusion is of great significance to guide the external insulation design, fault analysis and operation and maintenance of the DC grounding line.
机译:接地极线是特高压直流输电系统的重要设备。由于正常运行期间接地极线的稳态电压较低,因此接地极线采用35kV AC线的外部绝缘。但是,接地极塔大多使用110kV电压等级。因此外部绝缘较低。当直流系统失衡时,接地极线上会出现过电压,这可能会导致外部绝缘损坏。 2015年,±800 kV Bin-jin HVDC项目发生了“ 7.13”接地线路故障。由于金华市的高压直流套管损坏,系统直接变成了单极运行。外壳击穿时,宜宾至金华接地线的过电压导致接地电极的绝缘击穿,而没有引起线路避雷器的作用。在直流连续流无法熄灭的情况下,发生了绝缘子接地,地线和导体烧毁的事故。 “ 7.13”事故的发生暴露了高压直流输电系统接地电极电路的过电压和绝缘配合设计缺陷。本文以金华直流工程宜宾±800 kV“ 7.13”故障为分析对象。使用电力系统分析软件MATLAB Sim Power System建立了仿真模型。分析了特高压直流系统的内部过电压特性和接地电路的分布。计算出接地线内部过电压电平。分析表明,特高压接地电路内部的过电压取决于接地线长度,系统运行模式,输出避雷器参数。为了检查换流站的接地电极线,高压极的接地位置越靠近被检查的换流站,接地电极线的过电压越高。由于高压极线接地引起的接地极线过电压,从换流站到接地极线上的接地极呈逐渐下降的趋势。直流系统满功率时,接地电极线上的最大过电压通常是由高压侧的接地故障引起的。这样的过电压是接地电极线的外部绝缘操作的控制值。根据过电压的计算结果,给出了接地极线的合适绝缘配置调整方案。在“ 7.13”故障之后,国家电网公司对特高压直流接地电极线的外部绝缘配置进行了统一调整。接地电极线上的绝缘子串的数量已从3个或4个增加到5个或6个。绝缘子平行间隙的距离从20cm增加到68cm。因此避免了接地导体出口上的MOA无法保护外部绝缘的问题。该结论对指导直流接地线的外部绝缘设计,故障分析以及运行维护具有重要意义。

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