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Ion-focused propagation of a relativistic electron beam in the self-generated plasma in atmosphere

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【作者】 郝建红薛碧曦赵强张芳范杰清董志伟

【Author】 Jian-Hong Hao;Bi-Xi Xue;Qiang Zhao;Fang Zhang;Jie-Qing Fan;Zhi-Wei Dong;School of Electrical and Electronic Engineering Department, North China Electric Power University;Institute of Applied Physics and Computational Mathematics;

【通讯作者】 薛碧曦;

【机构】 School of Electrical and Electronic Engineering Department, North China Electric Power UniversityInstitute of Applied Physics and Computational Mathematics

【摘要】 It is known that ion-focused regime(IFR) can effectively suppress expansion of a relativistic electron beam(REB).Using the particle-in-cell Monte Carlo collision(PIC-MCC) method, we numerically investigate the propagation of an REB in neutral gas. The results demonstrate that the beam body is charge neutralization and a stable IFR can be established. As a result, the beam transverse dimensions and longitudinal velocities keep close to the initial parameters. We also calculate the charge and current neutralization factors of the REB. Combined with envelope equations, we obtain the variations of beam envelopes, which agree well with the PIC simulations. However, both the energy loss and instabilities of the REB may lead to a low transport efficiency during long-range propagation. It is proved that decreasing the initial pulse length of the REB can avoid the influence of electron avalanche. Using parts of REB pulses to build a long-distance IFR in advance can improve the beam quality of subsequent pulses. Further, a long-distance IFR may contribute to the implementation of long-range propagation of the REB in space environment.

【Abstract】 It is known that ion-focused regime(IFR) can effectively suppress expansion of a relativistic electron beam(REB).Using the particle-in-cell Monte Carlo collision(PIC-MCC) method, we numerically investigate the propagation of an REB in neutral gas. The results demonstrate that the beam body is charge neutralization and a stable IFR can be established. As a result, the beam transverse dimensions and longitudinal velocities keep close to the initial parameters. We also calculate the charge and current neutralization factors of the REB. Combined with envelope equations, we obtain the variations of beam envelopes, which agree well with the PIC simulations. However, both the energy loss and instabilities of the REB may lead to a low transport efficiency during long-range propagation. It is proved that decreasing the initial pulse length of the REB can avoid the influence of electron avalanche. Using parts of REB pulses to build a long-distance IFR in advance can improve the beam quality of subsequent pulses. Further, a long-distance IFR may contribute to the implementation of long-range propagation of the REB in space environment.

【基金】 supported by the Joint Funds of the National Natural Science Foundation of China (Grant Nos. 61372050 and U1730247)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2022年06期
  • 【分类号】O412.1;O53
  • 【下载频次】13
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