• DocumentCode
    832705
  • Title

    Negative Ion Extraction With Finite Element Solvers and Ray Maps

  • Author

    Cavenago, Marco ; Veltri, Pierluigi ; Sattin, Fabio ; Serianni, Gianluigi ; Antoni, Vanni

  • Author_Institution
    Lab. Naz. di Legnaro-Ist. Naz. di Fis. Nucleare, Legnaro
  • Volume
    36
  • Issue
    4
  • fYear
    2008
  • Firstpage
    1581
  • Lastpage
    1588
  • Abstract
    The negative ion production and extraction are critical aspects of the neutral beam injector for ITER, so that improvements in their physical understanding are expected to contribute to the optimization of the injector design. A self-consistent 2-D model of the formation and acceleration of a beam of negative ions (including the sheath) is presented here, with plasma presheath replaced by a boundary condition (on a so-called start line) consistent with the 1-D complete plasma equations. An equivalent volume production before the start line is assumed. Negative beam space charge is expressed in terms of a current modulus jSigma(z,x), coupled to the adimensional electric potential u. Solution is obtained with a partial differential equation finite element solver for u and with an iterative approach for jSigma. A continuous map of particle orbits or rays (efficiently generated by interpolation) is used to improve the traditional discrete ray tracing; moreover, beam edge resolution is refined. Results include detailed information on plasma meniscus and beam skin structure.
  • Keywords
    Tokamak devices; fusion reactor design; fusion reactor ignition; ion accelerators; ion beams; iterative methods; partial differential equations; particle beam extraction; plasma beam injection heating; plasma boundary layers; plasma sheaths; plasma simulation; space charge; ITER; NBI; beam edge resolution; beam skin structure; current modulus; discrete ray maps; electric potential; injector design optimization; iterative approach; negative beam space charge; negative ion beam acceleration; negative ion extraction; neutral beam injector; partial differential equation finite element solvers; plasma equations; plasma meniscus; plasma presheath; plasma simulations; self-consistent 2-D model; Acceleration; Boundary conditions; Design optimization; Finite element methods; Ion beams; Particle beam injection; Particle beams; Plasma accelerators; Plasma sheaths; Production; Meniscus; negative ion; plasma; simulations;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2008.927291
  • Filename
    4598945