DocumentCode :
1734226
Title :
Recent progress in computational plasma physics research with the MAGIC electromagnetic-PIC simulation tool
Author :
Smithe, D.N. ; Ludeking, L.D.
fYear :
2001
Firstpage :
267
Abstract :
Summary form only given. Reviews recent progress made in both the development of new plasma physics modeling capabilities, and the application of those capabilities to practical problems under investigation at several universities and industrial locations. The focus of the new modeling capabilities is the MAGIC electromagnetic-PIC simulation tool. A new "tuned impedance" boundary condition complements the existing tuned-phase-velocity boundary, and benefits the modeling of TWT and other slow-wave structures in 3-D, eliminating the need to model the coupler geometry. This boundary condition uses a novel implicit algorithm to circumvent the inherent instability which has hindered fixed impedance boundary conditions in the past. Progress on the implementation of the partial-cell-elements algorithm for curved conducting boundaries is reviewed. The addition of an adaptive marching-cubes representation (often encountered in medical imaging technology) of the curved surface forms the basis of the new surface\´s electromagnetic representation as well as its visualization. Two new diagnostics are presented. The first implementation of the "poynting splitter" technology in 3-D has been made. The splitter diagnostic separates forward and backward propagating power. A second diagnostic is the "statespace" graph, which permits alternate representation of time-history data in a form more suitable for the analysis of nonlinear dynamics, including time-delay embedding representation.
Keywords :
plasma oscillations; plasma simulation; reviews; slow wave structures; space charge; travelling wave tubes; Bethe formula; MAGIC electromagnetic-PIC simulation tool; TWT; adaptive marching-cubes representation; avalanche processes; backward propagating power; boundary condition; computational plasma physics research; coupler geometry; curved conducting boundaries; curved surface; deterministic nonlinear oscillations; electromagnetic representation; electromagnetic-PIC simulation; electron drag effect; forward propagating power; impedance boundary conditions; industrial locations; inherent instability; ion physics; ionization physics models; local impedance; medical imaging technology; modeling capabilities; nonlinear dynamics; partial-cell-elements algorithm; phase-velocity; plasma physics modeling; poynting splitter technology; practical problems; review; secondary emission models; secondary physics models; slow-wave structures; space-charge limited regimes; splitter diagnostic; state space graph; surface energy deposition; time-delay embedding representation; time-history data; tuned impedance boundary condition; tuned-phase-velocity boundary; universities; visualization; Boundary conditions; Educational institutions; Electromagnetic modeling; Focusing; Geometry; Impedance; Physics computing; Plasma applications; Plasma simulation; Solid modeling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pulsed Power Plasma Science, 2001. IEEE Conference Record - Abstracts
Conference_Location :
Las Vegas, NV, USA
Print_ISBN :
0-7803-7141-0
Type :
conf
DOI :
10.1109/PPPS.2001.960904
Filename :
960904
Link To Document :
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