DocumentCode :
2571526
Title :
3D Self Magnetic Field Calculation in the Finite-Element Gun Code Michelle
Author :
Nelson, E.M. ; Petillo, J.J.
Author_Institution :
Los Alamos Nat. Lab., NM
fYear :
2005
fDate :
20-23 June 2005
Firstpage :
267
Lastpage :
267
Abstract :
Summary form only given. Self-consistent three-dimensional (3D) self magnetic fields are desired for devices with relativistic beams or a 3D geometry, the latter including multiple beam guns and sheet beam guns. We have recently implemented a prototype 3D self magnetic field solver in the 2D/3D finite-element gun code MICHELLE. The implementation follows the proposal presented last year. We are still testing and developing the solver, but so far on a variety of tests it has met or exceeded our expectations, save one. The positive experience to date encourages us to continue developing the 3D solver and also to formulate and implement a 2D version of the solver. The solver employs the curl-curl formulation for the magnetic vector potential A using edge basis functions. The new current accumulation algorithm combined with MlCHELLE´s unique particle tracker for unstructured grids is efficient and accurate. The conjugate gradient (CG) matrix solver works well because the source vector is compatible with the singular finite-element matrix. Boundary conditions are important for compatibility. Our solver requires the tangential component of A to be zero on the boundary, a condition equivalent to perfectly conducting walls. This is appropriate for short pulsed beams inside conducting drift tubes. The model must also be well posed: the boundary must be connected to provide a return path for current. Otherwise, the source vector may be incompatible. Numerical integration errors can also make the source vector incompatible, but compatibility is guaranteed with a modest number of integration points, as indicated by a theory that also applies to charge-conserving current accumulation in electromagnetic particle-in-cell codes
Keywords :
conjugate gradient methods; electron guns; finite element analysis; integration; relativistic electron beam tubes; 3D self magnetic field calculation; MICHELLE code; charge-conserving current accumulation; conducting drift tubes; conjugate gradient matrix solver; curl-curl formulation; edge basis functions; electromagnetic particle-in-cell codes; finite-element gun code; magnetic vector potential; multiple beam guns; numerical integration errors; particle tracker; relativistic beams; sheet beam guns; Boundary conditions; Character generation; Finite element methods; Geometry; Guns; Magnetic fields; Particle tracking; Proposals; Prototypes; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2005. ICOPS '05. IEEE Conference Record - Abstracts. IEEE International Conference on
Conference_Location :
Monterey, CA
ISSN :
0730-9244
Print_ISBN :
0-7803-9300-7
Type :
conf
DOI :
10.1109/PLASMA.2005.359353
Filename :
4198612
Link To Document :
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