• DocumentCode
    1462598
  • Title

    CFD Calculation of Pressure Rise Due to Internal AC and DC Arcing in a Closed Container

  • Author

    Iwata, Mikimasa ; Tanaka, Shin-ichi ; Ohtaka, Toshiya ; Amakawa, Tadashi ; Anantavanich, Kittipong ; Pietsch, Gerhard J.

  • Author_Institution
    Central Res. Inst. of Electr. Power Ind. (CRIEPI), Yokosuka, Japan
  • Volume
    26
  • Issue
    3
  • fYear
    2011
  • fDate
    7/1/2011 12:00:00 AM
  • Firstpage
    1700
  • Lastpage
    1709
  • Abstract
    Computational fluid dynamics calculation results of pressure rise and propagation due to high-current arcs in a closed container are described. The pressure developments at different locations within the container are calculated by changing the current frequency (ac of 50 and 60 Hz, and dc) and the electric arc energy input (up to approximately 1000 kJ). The local pressure oscillation amplitude for AC/50 Hz within the container exceeds that for dc. From the pressure oscillation period and the sound speed distribution in the container, the following conclusions are made. With growing electric arc energy, the pressure amplitude increases because of the resonance effect between the arc power oscillation and pressure waves reflected on the walls. When the electric arc energy reaches a value of around 500 kJ, the pressure amplitude rises significantly. This is considered attributable to superimposition of pressure waves near the container wall caused by low propagation velocity of the pressure waves near the wall. It is necessary to consider this phenomenon for public safety when designing electric power equipment.
  • Keywords
    arcs (electric); computational fluid dynamics; containers; power apparatus; CFD calculation; DC arcing; arc power oscillation; closed container; computational fluid dynamics calculation; electric arc energy; electric power equipment; frequency 50 Hz; frequency 60 Hz; high-current arcs; internal AC arcing; local pressure oscillation amplitude; low propagation velocity; pressure oscillation period; pressure rise; pressure waves; resonance effect; sound speed distribution; Computational fluid dynamics; Containers; Equations; Heating; Mathematical model; Oscillators; Power systems; AC; DC; arc discharges; explosions; fault arcs; power distribution faults; power transmission faults; pressure rise;
  • fLanguage
    English
  • Journal_Title
    Power Delivery, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8977
  • Type

    jour

  • DOI
    10.1109/TPWRD.2011.2108320
  • Filename
    5722071