Analysis of the Wide Band Gyrotron Amplifier in a Dielectric Loaded Waveguide.

Abstract

The effect of broadening the bandwidth with a dielectric load in a cylindrical gyrotron is investigated for a hollow electron beam. The linear dispersion relation for the azimuthally symmetric, transverse electric (TE) modes is obtained by the method of the wave impedance matching. It is found that the TE perturbations exhibit three unstable modes characterized by their phase velocities (v(phl); one fast wave, the long wavelength mode (LWM, vph>c), and two slow waves, the intermediate (IWM,c>v(ph)>c c/sq root of epsilon) and the short (SWM, v(ph)< c/sq root of epsilon) avelength modes. The optimum conditions for the wide band operation and obtained individually for each mode. Although the bandwidth in excess of 40% is possible for the slow waves (IWM, SWM) at a small axial momentum spread, it decreases rapidly as the spread increases. On the other hand, the LWM yields approximately 10% of the bandwidth insensitive to the spread. It is also shown that for a small spread (less than 5%), the slow wave (IWM) is preferable for the wide band operation, whereas for a large spread (greater than 5%) the fast wave (LWM) is desirable.

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Document Details

Document Type
Technical Report
Publication Date
Mar 10, 1981
Accession Number
ADA095954

Entities

People

  • H. Uhm
  • J. Choe
  • S. Ahn

Organizations

  • United States Naval Research Laboratory

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Bessel Functions
  • Dielectric Permittivity
  • Dielectric Waveguides
  • Dielectrics
  • Dispersion Relations
  • Electric Fields
  • Electromagnetic Fields
  • Electron Beams
  • Equations
  • Frequency
  • Gyrotrons
  • Instability
  • Long Wavelengths
  • Magnetic Fields
  • Materials
  • Phase Velocity
  • Short Wavelengths

Fields of Study

  • Physics

Readers

  • Combustion Dynamics and Shock Wave Physics.
  • Electronics Engineering
  • Pulsed Power and Plasma Physics.

Technology Areas

  • Directed Energy
  • Microelectronics