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强电磁脉冲下继电保护装置端口的场线耦合特性

姚丁丁 张卫东 金龙 周泽昕 周广龙

姚丁丁, 张卫东, 金龙, 等. 强电磁脉冲下继电保护装置端口的场线耦合特性[J]. 强激光与粒子束. doi: 10.11884/HPLPB202537.250014
引用本文: 姚丁丁, 张卫东, 金龙, 等. 强电磁脉冲下继电保护装置端口的场线耦合特性[J]. 强激光与粒子束. doi: 10.11884/HPLPB202537.250014
Yao Dingding, Zhang Weidong, Jin Long, et al. Field-line coupling characteristics of relay protection device under strong electromagnetic pulse[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202537.250014
Citation: Yao Dingding, Zhang Weidong, Jin Long, et al. Field-line coupling characteristics of relay protection device under strong electromagnetic pulse[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202537.250014

强电磁脉冲下继电保护装置端口的场线耦合特性

doi: 10.11884/HPLPB202537.250014
基金项目: 国家电网有限公司科技项目(5108-202218280A-2-215-XG)
详细信息
    作者简介:

    姚丁丁,18813029368@163.com

  • 中图分类号: TM774

Field-line coupling characteristics of relay protection device under strong electromagnetic pulse

  • 摘要: 强电磁脉冲会以场-传输线耦合的方式在线缆上形成纳秒级上升沿的脉冲传导骚扰,对线缆末端的设备构成较大威胁。针对某型号继电保护装置,先测试其抗扰度性能,然后开展场线耦合路径下的高空电磁脉冲辐照试验,获得了装置端口的耦合特性。耦合到信号端口的共模电流达32.45 A及以上时引发了该装置的误动作。同时开展了脉冲电流注入试验,注入信号端口的脉冲电流达36.92 A及以上时该装置误动作,进一步确定了装置端口的临界干扰阈值。通过建立变电站内二次电缆和保护屏柜内信号线缆的场线耦合模型,计算了不同场景下高空电磁脉冲产生的耦合量,提出了场线耦合的防护重点。研究结果可为继电保护装置在强电磁脉冲环境下的抗干扰能力评估与防护技术提供参考。
  • 图  1  试验设备布置及继电保护装置实物

    Figure  1.  Test equipment layout and relay protection device

    图  2  高空电磁脉冲及其场线耦合方式

    Figure  2.  High-altitude electromagnetic pulse and its field-line coupling mode

    图  3  电磁脉冲试验环境及设备布置

    Figure  3.  Electromagnetic pulse test environment and equipment layout

    图  4  测量系统

    Figure  4.  Measurement system

    图  6  线缆上的共模电流

    Figure  6.  Common mode current on the cable

    图  5  实测电场和空场电场

    Figure  5.  Measured electric field and electric field under empty space

    图  7  继电保护装置动作界面

    Figure  7.  Operation interface of relay protection device

    图  8  近场场线耦合仿真及对比

    Figure  8.  Simulation and comparison of near field-Line coupling

    图  9  脉冲电流注入试验布置

    Figure  9.  Pulse current injection test layout

    图  10  强电磁脉冲作用示意图

    Figure  10.  Schematic diagram of the action of strong electromagnetic pulse

    图  11  远场场线耦合模型

    Figure  11.  Far field-line coupling model

    表  1  继电保护装置非正常情况

    Table  1.   Abnormal condition of relay protection device

    output voltage of EFT/V test phenomenon
    500 no phenomenon
    800 no phenomenon
    1000 the main screen goes back to“protection start”
    1500 do not attempt single-phase trip, directly perform three-phase trip
    2000 directly perform three-phase trip and send “accelerated intertrip” order
    下载: 导出CSV

    表  2  高空电磁脉冲试验结果

    Table  2.   High altitude electromagnetic pulse test results

    field intensity/(kV/m) common mode current on signal line/A test phenomenon
    4.50 6.99 ——
    6.41 10.09 ——
    9.06 13.62 ——
    14.43 22.57 ——
    19.51 29.91 ——
    21.68 31.18 ——
    23.17 32.45 maloperation/extended operation time
    24.25 33.98 maloperation
    25.69 36.10 maloperation
    25.58 36.95 maloperation
    29.83 42.45 maloperation
    31.23 41.73 maloperation
    34.40 45.12 maloperation
    下载: 导出CSV

    表  3  脉冲电流注入试验结果

    Table  3.   pulse current injection test results

    pulse injection source voltage/kV common mode current on signal line/A test phenomenon
    16 19.52 ——
    18 22.40 ——
    20 25.28 ——
    22 30.10 ——
    24 34.90 ——
    26 36.70 ——
    28 36.92 maloperation
    30 42.68 maloperation
    32 47.16 maloperation
    下载: 导出CSV

    表  4  场线耦合仿真结果

    Table  4.   Field line coupling simulation results

    cable type shielding current peak value/A core current peak value/A
    secondary cable grounded on both sides of shield layer and armor layer 37.11 0.17
    secondary cable grounded on both sides of shield layer 50.15 0.19
    secondary cable grounded on one side of the shield layer 50.16 11.55
    ungrounded secondary cable —— 11.55
    signal cable in cabinet —— 0.08
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-01-15
  • 修回日期:  2025-06-03
  • 录用日期:  2025-05-18
  • 网络出版日期:  2025-06-14

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