|
|
|
| Optimization and application of bipolar line fault restart logic for ultra high voltage direct current transmission systems |
| LUO Jinhui, ZHANG Jing, FU Guangxu, PAN Weiming, WANG Yongping |
| NR Electric Co., Ltd, Nanjing 211102 |
|
|
|
|
Abstract To prevent stability risks in the AC power grid caused by the fault restart of ultra high voltage direct current (UHVDC) lines, the restart of one pole needs to block the restart logic of the other pole. However, the transmission of blocking commands between the two DC control systems exsits communication delay. When the fault interval time between the two poles is less than the inter-pole communication delay, it will lead to the blocking of both poles. By optimizing the restart logic and introducing the maximum inter-pole communication delay parameter, the DC control systems can choose to restart one pole when the actual inter-pole communication delay is less than the maximum inter-pole communication delay. The real time digital simulation (RTDS) test and field application verify the feasibility of the optimized logic. By reasonably setting the maximum inter-pole communication delay, the problem of bipolar blocking caused by short-term successive faults in the two-pole lines in actual projects can be effectively solved.
|
|
Received: 07 July 2025
|
|
|
|
| Cite this article: |
|
LUO Jinhui,ZHANG Jing,FU Guangxu等. Optimization and application of bipolar line fault restart logic for ultra high voltage direct current transmission systems[J]. Electrical Engineering, 2026, 27(1): 64-72.
|
|
|
|
| URL: |
|
https://dqjs.cesmedia.cn/EN/Y2026/V27/I1/64
|
[1] 陶瑜. 直流输电控制保护系统分析及应用[M]. 北京: 中国电力出版社, 2015. [2] 李军, 俞翔, 刘心旸, 等. 特高压直流调峰运行功率调节范围评估[J]. 电气技术, 2023, 24(11): 42-47. [3] 吕彦北, 卢东斌, 李林, 等. 直流线路故障时抑制交流过电压的延时移相策略研究[J]. 电气技术, 2023, 24(5): 76-81. [4] 劳颖然. 提高高压直流继电保护事故处理效率实用措施研究[D]. 广州: 华南理工大学, 2018. [5] 戴志辉, 张程, 刘宁宁, 等. 特高压直流线路保护原理及动作策略分析[J]. 电力系统自动化, 2019, 43(21): 1-11. [6] 卢亚军, 蒲莹, 马玉龙, 等. 防止特高压直流工程单双极闭锁的关键措施[J]. 电力建设, 2015, 36(9): 117-122. [7] 肖龙, 李泰, 李艳梅, 等. 高压直流输电线路故障模拟与重启动策略[J]. 电气技术, 2023, 24(8): 70-73. [8] 卢东斌, 黄志岭, 龚飞, 等. 高压直流输电直流线路故障穿越重启策略[J]. 高电压技术, 2025, 51(2): 828-839. [9] 卢东斌, 俞翔, 黄志岭, 等. 高压直流输电系统故障电流控制策略及其应用[J]. 电力系统自动化, 2025, 49(16): 197-207. [10] 周保荣, 金小明, 吴小辰, 等. 特高压直流对交直流并联电网安全稳定影响[J]. 南方电网技术, 2010, 4(2): 31-34. [11] 蔺若琦, 郑超, 杨明玉, 等. 再启动控制对直流送端系统冲击影响及抑制措施[J]. 可再生能源, 2021, 39(12): 1641-1647. [12] 潘卫明, 卢东斌, 崔恒丰, 等. 特高压直流系统运行短路比检测方法及应用[J]. 电气技术, 2023, 24(9): 71-75, 79. [13] 徐式蕴, 吴萍, 赵兵, 等. 提升风火打捆哈郑特高压直流风电消纳能力的安全稳定控制措施研究[J]. 电工技术学报, 2015, 30(13): 92-99. [14] 周晓风, 吴彦维, 李乾, 等. 特高压直流输电线路故障重启策略优化研究[J]. 电气技术, 2016, 17(7): 36-40. [15] 邱威, 贺静波, 樊小伟, 等. 应对特高压直流大扰动的稳定措施综述[J]. 电网技术, 2022, 46(8): 3049-3067. [16] 魏星. 云广±800kV直流输电线路重启动功能分析[J]. 高电压技术, 2011, 37(12): 3059-3064. [17] 贾俊川, 张健, 张红丽, 等. 特高压直流双极相继故障再启动策略[J]. 电力系统自动化, 2015, 39(11): 45-50. [18] 禹佳, 孙文, 闫礼阳. 特高压锦屏换流站因雷击造成双极闭锁故障分析[J]. 四川电力技术, 2016, 39(6): 65-69. [19] 徐浩, 侍乔明, 欧阳帆, 等. 祁韶±800 kV特高压直流输电工程两种故障重启动逻辑研究[J]. 电力系统保护与控制, 2018, 46(12): 143-150. [20] 付广旭, 卢东斌, 张靖, 等. 特高压直流在线融冰技术及其工程应用[J]. 电气技术, 2024, 25(4): 77-84. [21] 杨亚宇, 邰能灵, 谢卫, 等. 利用单端边界能量的直流输电线路全线速动保护[J]. 电工技术学报, 2023, 38(9): 2403-2417. [22] 黄杨, 张广斌, 王潜, 等. 基于图像特征的输电线路故障行波存续性判别[J]. 电工技术学报, 2023, 38(5): 1339-1352. |
|
|
|