• DocumentCode
    1152336
  • Title

    Mechanisms and Predictors of Insulator Degradation and Erosion Produced by Pulsed High-Current Surface Discharges

  • Author

    Engel, Thomas G. ; Kristiansen, Magne

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Missouri, Columbia, MO, USA
  • Volume
    37
  • Issue
    9
  • fYear
    2009
  • Firstpage
    1863
  • Lastpage
    1870
  • Abstract
    The mechanisms and predictors of insulator degradation and erosion by pulsed high-current surface discharges are presented and discussed. Erosion and degradation depend on the insulator material, the electrode material, the ambient gas, and the presence of UV stabilizers in, or on the surface of, the insulator. Insulator degradation is the result of material decomposition into conductive metal or carbon species and is measured by a decrease in the surface breakdown voltage. Insulator erosion is measured by the material´s mass loss. The performance of a large group of ceramic, polymeric, and elastomeric materials tested with graphite and molybdenum electrodes is presented in this investigation. The insulators are exposed to repetitive 300-kA 20-mus-long surface discharges. Tests are performed in atmospheric air and pure nitrogen. Various methods to rank insulators in terms of holdoff voltage degradation, mass erosion, and holdoff voltage conditioning (HVC) using the material´s thermochemical properties are presented and discussed. HVC is characterized by an initial increase in surface holdoff voltage. The ranking method developed by the authors characterizes the insulator according to the holdoff degradation resistance (HDR), mass vaporization coefficient (MVC), and HVC figures of merit calculated by the material´s thermochemical properties. The investigation also shows the relationship between the HDR, MVC, and HVC figures of merit.
  • Keywords
    ceramic insulators; ceramics; elastomers; electrodes; graphite; insulator testing; molybdenum; organic insulating materials; plasma materials processing; polymer insulators; surface discharges; thermochemistry; vaporisation; C; HDR figures of merit; HVC figures of merit; MVC figures of merit; Mo; UV stabilizers; atmospheric air discharge; carbon species; ceramic material; conductive metal; current 300 kA; elastomeric material; erosion mechanism; graphite electrode; holdoff degradation resistance; holdoff voltage conditioning; insulator degradation predictor; insulator material testing; mass loss; mass vaporization coefficient; material decomposition; molybdenum electrode; nitrogen discharge; polymeric material; pulsed high-current surface discharge; surface breakdown voltage; thermochemical properties; time 20 mus; Coilguns; insulator contamination; insulators; pulse power systems; railguns;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2009.2025886
  • Filename
    5175368