DocumentCode
2879013
Title
Three-dimensional, time-dependent simulation of Inductive Output Tubes
Author
Freund, H.P. ; Verboncoeur, J. ; Sessions, Walter ; Jamroz, B. ; Jhurani, C. ; Ives, L. ; Bui, T.
Author_Institution
Sci. Applic. Int. Corp., McLean, VA, USA
fYear
2011
fDate
26-30 June 2011
Firstpage
1
Lastpage
1
Abstract
Summary form only given. We report on a 3-dimensional (3D), time-domain simulation code (NEMESIS) for Inductive Output Tubes (IOTs). NEMESIS integrates the equivalent circuit equations in time coupled with the Lorentz force equations for particle trajectories. The RF fields are found by using the cavity voltage as a scale factor in either an analytic model (Kosmahl and Branch or by means of a 3D field map generated by electromagnetic structure simulators. The electron trajectories are integrated in these RF fields as well as using magnetostatic focusing fields. Two Poisson solvers had previously been implemented in 2D: (1) using the method of successive over relaxation (SOR), and (2) a multi-grid (MG) algorithm. NEMESIS was successfully benchmarked for an IOT developed at CPI (K5H90W-2) using the SOR solver, and this result was recovered using the MG solver. We report on the implementation of a fully 3D Poisson solver based on the PETSc library. The IOT used to validate NEMESIS is azimuthally symmetric; hence, a 2D solution is/was adequate to simulate the tube. Initial results in 3D, therefore, primarily constitute a test of the 3D algorithm. The initial 3D simulations are in agreement with the former 2D results. The impact of the additional number of macro-particles and grid cells on the run time of the 3D formulation is not excessive compared to the 2D simulation. The technique, results, and run times will be discussed, as will future research plans.
Keywords
Poisson equation; electromagnetic fields; equivalent circuits; magnetostatics; time-domain analysis; vacuum tubes; 2D simulation; 3D Poisson solvers; 3D field map; 3D simulation; CPI; IOT; Lorentz force equations; MG algorithm; NEMESIS; RF fields; SOR solver; cavity voltage; electromagnetic structure simulators; equivalent circuit equations; inductive output tubes; magnetostatic focusing fields; multigrid algorithm; successive over relaxation; three-dimensional time-domain simulation code; time-dependent simulation; Electron tubes;
fLanguage
English
Publisher
ieee
Conference_Titel
Plasma Science (ICOPS), 2011 Abstracts IEEE International Conference on
Conference_Location
Chicago, IL
ISSN
0730-9244
Print_ISBN
978-1-61284-330-8
Electronic_ISBN
0730-9244
Type
conf
DOI
10.1109/PLASMA.2011.5992910
Filename
5992910
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