Investigations of Advanced, Slow-Wave, Microwave Vacuum ELectron Devices

Abstract

Our major research breakthroughs to date include: 1) Developing and operating a novel, multi-sensored I'Wl' for research of fundamental nonlinear physics in MPM-class TWTs, Advancing a new understanding of the physics of nonlinear distortions in TWTs, 2) Developing a new computational method to model ID linear-beam VEDs with Eulerian formulations, including the effects of charge overtaking, Establishing the fundamental physical mechanisms of harmonic and distortion product injection for linearization of TWTs, 3) Identifying a novel TWT transmitter configuration enabling extremely linear amplification of digitally-modulated signals while operating saturated and thus at maximum efficiency, 4) Completing the first combined experimental and simulation study of impulse amplification in TWTs revealing realistic prospects for novel applications to impulse radar, impulse communications, and impulse response measurements of small signal gain characteristics, 5) Conducting pioneering investigations of xray LIOA, UV LIGA and deep reactive ion etching methods for microfabricating mmwave and THz regime TWTs, and Developed and disseminated a suite of 1D TWT simulation codes for teaching and research of TWTs, making them available as open source software at http://www.1msuite.or2.

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Document Details

Document Type
Technical Report
Publication Date
Dec 31, 2004
Accession Number
ADA430702

Entities

People

  • John H. Booske

Organizations

  • University of Wisconsin–Madison

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Amplifiers
  • Computational Science
  • Computer Programs
  • Education
  • Electron Beams
  • Electronic Warfare
  • Electrons
  • Klystrons
  • Measurement
  • Microelectromechanical Systems
  • Open Source Software
  • Radiation
  • Simulations
  • Terahertz Radiation
  • Transmitters
  • Traveling Wave Tubes
  • Two Dimensional

Fields of Study

  • Physics

Readers

  • Computational Fluid Dynamics (CFD)
  • Electronics Engineering
  • Research Science/Academic Research

Technology Areas

  • Microelectronics