• DocumentCode
    324437
  • Title

    Transient behavior of the Ignitor plasma chamber under vertical displacement and halo current event

  • Author

    Mazzone, G. ; Pizzuto, A.

  • Author_Institution
    Associazione Euratom, Frascati, Italy
  • Volume
    1
  • fYear
    1997
  • fDate
    6-10 Oct 1997
  • Firstpage
    96
  • Abstract
    Given the new plasma disruption scenarios that envisage the production of a significant, nonaxisymmetric halo current during the current quench following a typical vertical displacement event (VDE), the structural integrity of the Ignitor plasma chamber (PC) has been verified by means of a dynamic elastic-plastic analysis. Since the analysis is non-linear and the various load components are distributed with different periodicity, the modeling of the entire (360°) PC structure has been necessary, and the loads have been applied simultaneously. Thus the Ignitor PC has been demonstrated to be capable of withstanding, according to the ASME III code rules, several thousands of cycles under plasma disruption conditions, involving an average halo current of 3 MA, i.e. 25% of the nominal plasma current, with a toroidal peaking factor of 2. The halo current value has been assumed on the basis of relevant experimental data. The main results of the analysis demonstrate how the elastic-plastic approach could mitigate the structural requirements for the Ignitor PC. In fact, the maximum plastic deformation is below 0.5% and the maximum permanent displacement is below 2 mm
  • Keywords
    elastoplasticity; fusion reactor design; fusion reactor reaction chamber; fusion reactor safety; plasma instability; plasma toroidal confinement; plastic deformation; 3 MA; ASME III code rules; Ignitor plasma chamber; current quench; dynamic elastic-plastic analysis; fusion reactor safety; halo current event; maximum permanent displacement; maximum plastic deformation; nonaxisymmetric halo current; plasma disruption scenarios; structural integrity; structural requirements; toroidal peaking factor; transient behavior; vertical displacement event; Finite element methods; Performance analysis; Plasma welding; Plastics; Production; Springs; Stress; Thermal factors; Thermal loading; Thermal quenching;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Fusion Engineering, 1997. 17th IEEE/NPSS Symposium
  • Conference_Location
    San Diego, CA
  • Print_ISBN
    0-7803-4226-7
  • Type

    conf

  • DOI
    10.1109/FUSION.1997.685670
  • Filename
    685670