DocumentCode :
1609040
Title :
An advanced electromagnetic eigenmode solver for vacuum electronics devices-CTLSS
Author :
Cooke, Simon J. ; Mondelli, A.A. ; Levush, Baruch ; Petillo, John J. ; Nelson, Edward ; Chernin, D.P. ; Antonsen, T.M.
Author_Institution :
Inst. for Plasma Res., Maryland Univ., College Park, MD, USA
fYear :
1998
Firstpage :
152
Abstract :
Summary form only given. The first module of the Cold-Test and Large-Signal Simulation (CTLSS) code, a next generation design tool for vacuum electronics devices, is presented. The prototype tool is a three-dimensional, finite-difference, frequency-domain cold-test code that operates on a rectangular structured grid. It uses a generalisation of the Jacobi-Davidson algorithm that has proven effective in solving test problems having sharp-edged structures with materials having large dielectric constants and loss tangents as high as 100%. Cold-test codes typically have experienced difficulty handling moderate to large loss tangents in sharp-edged structures (i.e., problems in which there is a large gradient in the loss tangent across the numerical grid.) this talk will present the CTLSS cold-test algorithm and code features that are useful for vacuum electronics design. Analysis of both closed cavities and periodic slow-wave structures will be presented. Initial tests on closed cavities indicate that the CTLSS algorithm can determine normal-mode frequencies well below 0.1% accuracy for all modes computed. During the coming year this code will be generalised to include unstructured, finite-element numerical mesh for the conformal representation of structures. The cold-test fields will feed forward into a large-signal simulation model, based on the CHRISTINE code (Antonsen et al., 1997).
Keywords :
digital simulation; eigenvalues and eigenfunctions; electronic engineering computing; finite difference methods; frequency-domain analysis; CHRISTINE code; CTLSS code; Jacobi-Davidson algorithm; advanced electromagnetic eigenmode solver; closed cavities; cold-test and large-signal simulation code; conformal representation; design tool; dielectric constants; feed forward; large loss tangents; large-signal simulation model; periodic slow-wave structures; rectangular structured grid; sharp-edged structures; three-dimensional finite-difference frequency-domain cold-test code; unstructured finite-element numerical mesh; vacuum electronics design; vacuum electronics devices; Algorithm design and analysis; Dielectric constant; Dielectric losses; Dielectric materials; Finite difference methods; Frequency; Jacobian matrices; Materials testing; Periodic structures; Prototypes;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 1998. 25th Anniversary. IEEE Conference Record - Abstracts. 1998 IEEE International on
Conference_Location :
Raleigh, NC, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-4792-7
Type :
conf
DOI :
10.1109/PLASMA.1998.677560
Filename :
677560
Link To Document :
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