DocumentCode
7865
Title
Development and Application of a Nonlinear Beam-Wave Interaction Code SBK2D for Sheet Beam Klystrons
Author
Cunjun Ruan ; Shuyuan Chen ; Xiaofeng Zhang ; Changqing Zhang ; Shuzhong Wang ; Xiudong Yang
Author_Institution
Key Lab. of High Power Microwave Sources & Technol., Inst. of Electron., Beijing, China
Volume
61
Issue
7
fYear
2014
fDate
Jul-14
Firstpage
2523
Lastpage
2530
Abstract
To study the nonlinear beam-wave interaction for sheet beam klystron (SBK), a 2-D simulation code of SBK2D, based on the 2-D rod macroparticle model, has been designed and realized thoroughly in this paper. In our physical model, the sheet beam is simulated by a series of rods with nonzero thickness and length in y and z directions, respectively (y is the direction of sheet beam´s narrow dimension, and z is the direction of beam motion). Then, the space-charge forces between the rod macroparticles are calculated by Green´s functions approach, and the port-approximation methods are employed to simulate high-frequency fields for each cavity. Furthermore, the relativistic Lorentz motion equation is solved to obtain the parameters for further macroparticle motion, and the specific criterions are introduced to deal with the sheet beam interception problem by the tunnel and cavities. To verify our simulation code, an eight-cavity W-band SBK has been designed, calculated, and analyzed by SBK2D in detail. The good consistency between SBK2D and 3-dimensional Particle in Cell (3-D PIC) program indicates the reliability of the physical model and simulation code for our program. In addition, the calculation time of SBK2D is only about 1% of that of the 3-D PIC, which makes it more feasible and efficient to calculate and optimize the initial physical parameters for the design of complicated SBK.
Keywords
Green´s function methods; approximation theory; klystrons; microwave tubes; reliability; 2D rod macroparticle model; 2D simulation code; 3-dimensional particle in cell; 3D PIC program; Green´s functions approach; SBK2D nonlinear beam-wave interaction code; cavities; eight-cavity W-band SBK; high-frequency field simulation; macroparticle motion; nonzero thickness; physical model; port-approximation methods; relativistic Lorentz motion equation; reliability; sheet beam interception problem; space-charge forces; tunnel; Cavity resonators; Electron beams; Force; Magnetic resonance; Magnetic tunneling; Solid modeling; 2-D rod macroparticle model; SBK2D; beam-wave interaction code; sheet beam klystron (SBK); sheet beam klystron (SBK).;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/TED.2014.2319084
Filename
6816031
Link To Document