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表面复合改性对真空沿面闪络的双重抑制

霍艳坤 刘文元 何亚姣 王红洁 柯昌凤 程军

霍艳坤, 刘文元, 何亚姣, 等. 表面复合改性对真空沿面闪络的双重抑制[J]. 强激光与粒子束. doi: 10.11884/HPLPB202537.240280
引用本文: 霍艳坤, 刘文元, 何亚姣, 等. 表面复合改性对真空沿面闪络的双重抑制[J]. 强激光与粒子束. doi: 10.11884/HPLPB202537.240280
Huo Yankun, Liu Wenyuan, He Yajiao, et al. Dual suppression on the vacuum surface flashover from composite surface modification[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202537.240280
Citation: Huo Yankun, Liu Wenyuan, He Yajiao, et al. Dual suppression on the vacuum surface flashover from composite surface modification[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202537.240280

表面复合改性对真空沿面闪络的双重抑制

doi: 10.11884/HPLPB202537.240280
基金项目: 强脉冲辐射环境模拟与效应全国重点实验室开放基金项目(NKLIPR2418)
详细信息
    作者简介:

    霍艳坤,huoyankun@nint.ac.cn

  • 中图分类号: TM215.3

Dual suppression on the vacuum surface flashover from composite surface modification

  • 摘要: 为提升绝缘材料真空沿面耐压,提出了一种由微槽与分子自组装膜结合的复合结构,并采用激光微刻蚀、超声清洗、分子自组装等方法,在氧化铝真空绝缘子表面制备了该表面复合结构。作为对比,同时制备了仅有微槽或分子自组装膜的绝缘子。二次电子发射系数测试结果表明,表面微槽结构和表面分子自组装膜都可以降低绝缘子的二次电子发射系数,而他们相结合形成的复合结构能够进一步降低绝缘子的二次电子发射系数;相应的,闪络电压测试结果表明表面微槽结构和表面分子自组装膜都可以提升绝缘子的真空沿面闪络电压,而两者相结合形成的复合结构能够进一步提升闪络电压。该结果证明了复合结构中分子自组装膜和微槽能够对真空沿面闪络的发展进行双重抑制。
  • 图  1  复合绝缘子的结构及其制备过程示意图

    Figure  1.  Schematic of the composite surface structure and its preparation flow chart

    (a) Composite surface structure. (b) Illustration of the formation of molecule self-assembly membrane. (c) Preparation flow chart.

    图  2  绝缘子的SEM、EDS与水接触角测试结果

    Figure  2.  SEM, EDS and water contact test results of the insulators

    (a) Original alumina. (b) Grooved alumina. (c) Composite insulator. (d) EDS of original alumina. (e) EDS of grooved alumina. (f) EDS of composite insulator. (g) Water contact test of grooved alumina insulator. (h) Water contact test of composite alumina insulator.

    图  3  绝缘子的二次电子发射系数

    Figure  3.  Secondary electron emission yield of the insulators

    图  4  绝缘子的闪络电压

    Figure  4.  Flashover voltages of the insulators

    图  5  绝缘子表面的二次电子倍增与气体释放示意图

    Figure  5.  Multipactor and gas desorption of the insulators

    (a) Original ceramic insulator. (b) Grooved alumina insulator. (c) Molecule self-assembled alumina. (d) The composite insulator.

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出版历程
  • 收稿日期:  2024-08-26
  • 修回日期:  2025-03-19
  • 录用日期:  2025-01-13
  • 网络出版日期:  2025-04-07

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