DocumentCode :
3202394
Title :
IRES: a code evaluating the beamlet beamlet interaction for multi-aperture electrostatic accelerators
Author :
Pilan, N. ; Serianni, G. ; Antoni, V.
Author_Institution :
Consorzio RFX, Assoc. EURATOM-ENEA per la fusione, Padova, Italy
fYear :
2009
fDate :
1-5 June 2009
Firstpage :
1
Lastpage :
4
Abstract :
The beamlet-beamlet interaction is an important process which has a relevant impact on the design of the grids for a multi-aperture electrostatic accelerator. Space-charge effect leads to beamlet deflection increasing the divergence of the whole beamlet group. According to the beamlet deflection, the grid apertures have to be properly aligned in order to provide the correct aiming of the beamlets and to avoid excessive thermal load on the grids. A new tool called IRES (Ion Relativistic Equation Solver) has been developed in Matlabreg to simulate the 3D trajectories of a whole group of beamlets by integrating the relativistic equation of motion; the benchmark between this simple code and the results calculated by other tools can be useful to address the electrostatic accelerator design toward a reliable solution. The IRES code starts from a three- dimensional map of magnetic and electric fields evaluated by other software packages (e.g. ANSYSreg or Comsol Multiphysicsreg) and it determines iteratively the central particle trajectory of each beamlet. The field map is then updated by taking into account the effect of the spatial charge due to the negative ion beamlets; the process is repeated until a self-consistent solution is reached both for the field maps and the trajectories. The code has been validated in the case of a simple beamlet- beamlet interaction by comparing the results with those obtained using an analytical formula. IRES has then been applied to study the trajectories of negative ions in the 1 MV ITER Neutral Beam Injector with a single gap configuration (SINGAP). It is expected that the advantage of using IRES will be apparent when evaluating the beam divergence in the presence of a large number of beamlets, due to the one-dimensional approximation used in the code.
Keywords :
Tokamak devices; beam handling techniques; electric fields; electrostatic accelerators; fusion reactor design; fusion reactor ignition; ion beams; magnetic fields; negative ions; physics computing; plasma beam injection heating; space charge; ANSYS; Comsol Multiphysics; IRES code; ITER neutral beam injector; SINGAP; beamlet deflection; beamlet-beamlet interaction; central particle trajectory; electric fields; ion relativistic equation solver code; magnetic fields; multiaperture electrostatic accelerator grid design; negative ions; relativistic equation of motion; self consistent solution; single gap configuration; software packages; space-charge effect; thermal load; voltage 1 MV; Acceleration; Apertures; Computer languages; Electrostatics; Equations; Ion accelerators; Particle accelerators; Software packages; Thermal loading; Trajectory; ITER; beam; deflection; ions; space charge;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fusion Engineering, 2009. SOFE 2009. 23rd IEEE/NPSS Symposium on
Conference_Location :
San Diego, CA
Print_ISBN :
978-1-4244-2635-5
Electronic_ISBN :
978-1-4244-2636-2
Type :
conf
DOI :
10.1109/FUSION.2009.5226536
Filename :
5226536
Link To Document :
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