• DocumentCode
    2650772
  • Title

    Measurement of I-V characteristic of short-pulse (10-15ns) electron beam

  • Author

    Andreev, Andrey D. ; Schamiloglu, Edl

  • Author_Institution
    Dept. of Electr. & Comput. Eng., New Mexico Univ., Albuquerque, NM
  • fYear
    2006
  • fDate
    4-8 June 2006
  • Firstpage
    368
  • Lastpage
    368
  • Abstract
    Summary form only given. It has been experimentally demonstrated that the current voltage characteristic of a short-pulse electron beam (when the electron beam pulse duration is less than or comparable with the electron time-of-flight between the cathode and anode in the planar geometry of the electron diode) is considerably higher than the conventional Child-Langmuir limit. It can be projected, also, that in the coaxial geometry of electron beam formation, where the Fedosov-Belomytsev current is an analog of the Child-Langmuir current, the I-V characteristic of a short-pulse electron beam should similarly be higher. This means that, when the electron-beam pulse duration is less than or comparable with the characteristic time determining the formation of the steady-state space charge distribution along the electron-beam drift path downstream from the cathode, the total electron beam current should be higher than the appropriate Fedosov-Belomytsev limit. We measured the current-voltage characteristic of nanosecond duration (10-15 ns) thin tubular relativistic (300-600 keV) electron beams accelerated in vacuum along the axis of a smooth uniform metal tube immersed in a strong axial magnetic field. Results of these measurements as well as results of computer simulations performed using the 3D MAGIC code show that the I-V characteristic at the front of the nanosecond-duration electron-beam pulse is different from the analogous dependence measured at the flat part of the pulse. In the steady-state (flat) part of the pulse, the measured electron-beam current is close to Fedosov-Belomytsev current, which is governed by the conservation law of electron momentum flow for any constant voltage. In the non steady state part (front) of the pulse, the electron-beam current is considerably higher than the appropriate steady-state Fedosov-Belomytsev current and is close to the space-charge limiting current determining the maximum electron beam current that a metallic tube is capab- e of supporting
  • Keywords
    plasma simulation; plasma transport processes; plasma-beam interactions; relativistic electron beams; space charge waves; 10 to 15 ns; 300 to 600 keV; 3D MAGIC code; Child-Langmuir current; Fedosov-Belomytsev current; axial magnetic field; computer simulations; conservation law; current-voltage characteristics; electron beam current; electron diode; electron momentum flow; electron time-of-flight; electron-beam drift path; short-pulse electron beam; space-charge limiting current; tubular relativistic electron beams; Anodes; Cathodes; Current measurement; Current-voltage characteristics; Electron beams; Electron tubes; Geometry; Magnetic field measurement; Pulse measurements; Steady-state;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plasma Science, 2006. ICOPS 2006. IEEE Conference Record - Abstracts. The 33rd IEEE International Conference on
  • Conference_Location
    Traverse City, MI
  • Print_ISBN
    1-4244-0125-9
  • Type

    conf

  • DOI
    10.1109/PLASMA.2006.1707241
  • Filename
    1707241