Improvement of the spatial current density distribution of intense pulsed electron beams

被引:0
|
作者
Mueller, G [1 ]
Bluhm, H [1 ]
Engelko, V [1 ]
Komarov, O [1 ]
机构
[1] Forschungszentrum Karlsruhe, IHM, D-76021 Karlsruhe, Germany
关键词
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Multifold measurements of the radial electron beam current density distribution, performed at the GESA facility, demonstrate that it commonly has a maximum near the beam axis in contradiction to calculations which predict that it should be homogeneous. The reason for this is related to the influence of target ions on the distribution of the emission current density of the cathode operating in a space charge limited mode. The ion flux arises due to ionization of absorbed atoms and plasma formation on the target surface. Ions, emitted from the target plasma under the action of the electron beam space charge, move to the electron source and disturb the electric field distribution in the region of electron beam formation. Since ions are not magnetized, their trajectories do not coincide with the electron trajectories. Therefore, the distortion of the electric field takes place mainly near the central part of the source. This results in a change of the electron beam current density distribution. In this paper we present the results of numerical and experimental investigations with the aim to suppress the ion flux towards the cathode. The investigations are performed for the pulsed electron beam facility GESA 1 (electron beam parameters <150 keV, 300 A). Different electrostatic ion traps are considered. Best results are achieved using a positively biased (>15 kV) ion trap consisting of a thin disk placed in front of the target and for a negatively biased (>-15) target itself. For both cases the ion flux towards the cathode is eliminated.
引用
收藏
页码:714 / 716
页数:3
相关论文
共 50 条
  • [11] MEASUREMENT OF INTEGRAL CHARACTERISTICS OF INTENSE PULSED ELECTRON-BEAMS
    GLEBOV, VV
    MALAFAEV, VA
    NOVICHKOV, DN
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1979, 22 (02) : 332 - 334
  • [12] Electron energy distribution function of a pulsed intense electron beam
    Nistor, M
    Mandache, NB
    JOURNAL OF OPTOELECTRONICS AND ADVANCED MATERIALS, 2005, 7 (03): : 1619 - 1622
  • [13] Limiting Current of Intense Electron Beams in a Decelerating Gap
    Nusinovich, Gregory S.
    Thomson, Connor
    Beaudoin, Brian L.
    Antonsen, T. M., Jr.
    2016 IEEE INTERNATIONAL VACUUM ELECTRONICS CONFERENCE (IVEC), 2016,
  • [14] Limiting current of intense electron beams in a decelerating gap
    Nusinovich, G. S.
    Beaudoin, B. L.
    Thompson, C.
    Karakkad, J. A.
    Antonsen, T. M., Jr.
    PHYSICS OF PLASMAS, 2016, 23 (02)
  • [15] Spatial electron density distribution in a high-power pulsed magnetron discharge
    Bohlmark, J
    Gudmundsson, JT
    Alami, J
    Latteman, M
    Helmersson, U
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2005, 33 (02) : 346 - 347
  • [16] Experimental studies of intense pulsed large-area electron beams
    Arkhipov A.V.
    Kovalev V.G.
    Mishin M.V.
    Mueller G.
    Sominsky G.G.
    Engel’Ko V.I.
    Radiophysics and Quantum Electronics, 2004, 47 (5-6) : 421 - 428
  • [17] TOKAMAK HEATING AND CURRENT MAINTENANCE WITH INTENSE PULSED ION-BEAMS
    MANHEIMER, WM
    WINSOR, NK
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1980, 25 (08): : 917 - 917
  • [18] SELF-PINCHING AND FILAMENT EFFECT OF INTENSE PULSED ELECTRON BEAMS
    江兴流
    陈克凡
    姜松川
    ScienceBulletin, 1985, (09) : 1163 - 1165
  • [19] GENERATION OF INTENSE PULSED ELECTRON-BEAMS BY SUPERPOSITION OF 2 DISCHARGES
    GANCIU, M
    MODREANU, G
    POINTU, AM
    POPESCU, II
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1994, 27 (07) : 1370 - 1374
  • [20] Improvement of hydrogen embrittlement resistance by intense pulsed ion beams for a martensitic steel
    Jiang, Y. F.
    Xu, W.
    Zhang, Q.
    Zhang, B.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (40) : 21239 - 21248