• DocumentCode
    1070787
  • Title

    Numerical analyses of non-uniform current distribution within the multi-strand superconducting cable for fusion apparatus

  • Author

    Seo, Kazutaka ; Takahata, Kazuya ; Mito, Toshiyuki ; Nishijima, Shigehiro

  • Author_Institution
    Nat. Inst. for Fusion Sci., Japan
  • Volume
    14
  • Issue
    2
  • fYear
    2004
  • fDate
    6/1/2004 12:00:00 AM
  • Firstpage
    1360
  • Lastpage
    1364
  • Abstract
    Multi-strand superconducting cables, e.g., cable in conduit conductors (CICCs), are applied to large-scale apparatus, such as fusion machines. In this sort of cable, strands carry different currents. This phenomenon is known as nonuniform current distribution (NUCD). NUCD causes increase of AC loss and/or instability of the cable. During the energization, induced voltage occurs along each strand and the minute difference between induced voltages results in the circulation current through the closed circuit composed of two different strands. Superposing these circulation currents and transport one, NUCD appears. The leakage inductance along the pair of strands is around 10-7, thus the minute difference between induced voltages can produce large circulation currents. In spite of this fact, conventional NUCD simulations are fulfilled with ideal circuit models. Here, the ideal model consists of superposition of sinusoidally waving tracks of the strands. We made a numerical electric circuit model based on real tracks of strands simulating actual multi-strand cable. We considered mechanical interactions between the strands and proposed the solution about the strands´ positions based on the mechanical energy minimum principle. Establishing suitable circuit model, we successfully calculated NUCD. Finally, NUCD due to the deformation of the cable´s cross section was discussed. The deformation is caused by the electromagnetic force or cross sectional forming into rectangular shape.
  • Keywords
    circuit analysis computing; current distribution; fusion reactors; leakage currents; numerical analysis; superconducting cables; AC loss; NUCD simulations; cable cross section; cable deformation; cable in conduit conductors; circulation current; closed circuit; cross sectional forming; electromagnetic force; fusion apparatus; fusion machines; ideal circuit models; induced voltage; large-scale apparatus; leakage inductance; mechanical energy minimum principle; mechanical interactions; multi-strand superconducting cable; nonuniform current distribution; numerical analyses; numerical electric circuit; Circuit simulation; Conductors; Current distribution; Inductance; Large-scale systems; Numerical analysis; Numerical models; Power cables; Superconducting cables; Voltage; Induced voltage; multi-strand superconducting cable; nonuniform current distribution;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2004.830578
  • Filename
    1325052