中国物理B ›› 2011, Vol. 20 ›› Issue (10): 104101-104101.doi: 10.1088/1674-1056/20/10/104101

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Investigation of the diocotron instability of an infinitely wide sheet electron beam by using the macroscopic cold-fluid model theory

阮存军1, 韩莹2   

  1. (1)Key Laboratory of High Power Microwave Sources and Technologies, Institute of Electronics, Chinese Academy of Sciences, Beijing 100190, China; (2)Key Laboratory of High Power Microwave Sources and Technologies, Institute of Electronics, Chinese Academy of Sciences, Beijing 100190, China; Graduate University of the Chinese Academy of Sciences, Beijing 100049, China
  • 收稿日期:2010-11-22 修回日期:2011-04-28 出版日期:2011-10-15 发布日期:2011-10-15
  • 基金资助:
    Project supported by the National Natural Science Foundation of China (Grant Nos. 60501019, 10775139, and 60971073).

Investigation of the diocotron instability of an infinitely wide sheet electron beam by using the macroscopic cold-fluid model theory

Han Ying(韩莹)a)b)† and Ruan Cun-Jun(阮存军)a)   

  1. a Key Laboratory of High Power Microwave Sources and Technologies, Institute of Electronics, Chinese Academy of Sciences, Beijing 100190, China; b Graduate University of the Chinese Academy of Sciences, Beijing 100049, China
  • Received:2010-11-22 Revised:2011-04-28 Online:2011-10-15 Published:2011-10-15
  • Supported by:
    Project supported by the National Natural Science Foundation of China (Grant Nos. 60501019, 10775139, and 60971073).

摘要: This paper investigates the diocotron instability of an infinitely wide relativistic sheet electron beam in conducting walls propagating through a uniform magnetic field by using the macroscopic cold-fluid model theory. Assuming low-frequency perturbations with long axial wavelengths, the eigenvalue equation and the dispersion relation are acquired for a sheet electron beam with sharp boundary profile and uniform density. The results presented in this paper has developed the use of the macroscopic cold-fluid model theory by extending the parameter of the electron cyclotron frequency ωc to a wider usage range, which is restricted to be much larger than the plasma frequency ωp in the previous research work. Theoretical analyses and numerical calculations indicate that the transport of the sheet electron beam will be completely stabilized by augmenting the normalized beam thickness to a conductor gap larger than a threshold λb, which is greatly dependent on the parameter ωc/ωp. The larger ωc/ωp is, the smaller λb will be needed. Moreover, the system parameters, including the wave number kx of the perturbations and the relativistic mass factor γb, will also influence the growth rate of diocotron instability obviously.

关键词: diocotron instability, macroscopic cold-fluid model, sheet electron beam

Abstract: This paper investigates the diocotron instability of an infinitely wide relativistic sheet electron beam in conducting walls propagating through a uniform magnetic field by using the macroscopic cold-fluid model  theory. Assuming low-frequency perturbations with long axial wavelengths, the eigenvalue equation and the dispersion relation are acquired for a sheet electron beam with sharp boundary profile and uniform density. The results  presented in this paper has developed the use of the macroscopic cold-fluid model theory by extending the parameter of the electron cyclotron frequency $\omega _{\rm c} $ to a wider usage range, which is restricted to be much  larger than the plasma frequency $\omega _{\rm p} $ in the previous research work. Theoretical analyses and numerical calculations indicate that the transport of the sheet electron beam will be completely stabilized by  augmenting the normalized beam thickness to a conductor gap larger than a threshold $\lambda _{\rm b} $, which is greatly dependent on the parameter ${\omega _{\rm c} }/{\omega _{\rm p}}$. The larger ${\omega_{\rm c} }/  {\omega _{\rm p} }$ is, the smaller $\lambda _{\rm b} $ will be needed. Moreover, the system parameters, including the wave number $k_x $ of the perturbations and the relativistic mass factor $\gamma _{\rm b} $, will also  influence the growth rate of diocotron instability obviously.

Key words: diocotron instability, macroscopic cold-fluid model, sheet electron beam

中图分类号:  (Charged-particle beams)

  • 41.75.-i
41.85.-p (Beam optics) 41.85.Ja (Particle beam transport) 41.90.+e (Other topics in electromagnetism; electron and ion optics)