Javascript must be enabled to continue!
A G-Band Pulsed Wave Traveling Wave Tube for THz Radar
View through CrossRef
The growing interest in high-power amplifier for the terahertz (THz) Rader system leads to significant performance improvements of THz wave traveling-wave tubes (TWT). This article presents a detailed development of a G-band pulsed wave TWT with 120·W output power. Three approaches have been combined to improve the tube’s output power including proposing the modified folded waveguide (MFWG) slow wave structure (SWS), using large beam current, and adopting phase velocity tapering (PVT). Firstly, the MFWG SWS circuit has additional degree of freedom that can be used to achieve approximately 36% higher interaction impedance than that in the conventional folded waveguide (CFWG). Subsequently, the electron beam current was increased to approximately 100 mA to boost the DC power of the electron beam. Finally, the PVT technology dramatically enhanced the output power from 98 W to 143 W, concomitant with a notable increase in electronic efficiency from 4.75% to 7.03%. Hot experimental results show that the measured output power can be over 100 W at 20% duty cycle within a bandwidth of 5 GHz when the operation voltage and the current are 22.48kV and 103.5 mA, respectively. Besides, the maximum power is 121 W with the corresponding electronic efficiency of 5.1%. The proposed G-band 100 W TWT will have broad applications in far-distance high-resolution imaging.
Title: A G-Band Pulsed Wave Traveling Wave Tube for THz Radar
Description:
The growing interest in high-power amplifier for the terahertz (THz) Rader system leads to significant performance improvements of THz wave traveling-wave tubes (TWT).
This article presents a detailed development of a G-band pulsed wave TWT with 120·W output power.
Three approaches have been combined to improve the tube’s output power including proposing the modified folded waveguide (MFWG) slow wave structure (SWS), using large beam current, and adopting phase velocity tapering (PVT).
Firstly, the MFWG SWS circuit has additional degree of freedom that can be used to achieve approximately 36% higher interaction impedance than that in the conventional folded waveguide (CFWG).
Subsequently, the electron beam current was increased to approximately 100 mA to boost the DC power of the electron beam.
Finally, the PVT technology dramatically enhanced the output power from 98 W to 143 W, concomitant with a notable increase in electronic efficiency from 4.
75% to 7.
03%.
Hot experimental results show that the measured output power can be over 100 W at 20% duty cycle within a bandwidth of 5 GHz when the operation voltage and the current are 22.
48kV and 103.
5 mA, respectively.
Besides, the maximum power is 121 W with the corresponding electronic efficiency of 5.
1%.
The proposed G-band 100 W TWT will have broad applications in far-distance high-resolution imaging.
Related Results
Blunt Chest Trauma and Chylothorax: A Systematic Review
Blunt Chest Trauma and Chylothorax: A Systematic Review
Abstract
Introduction: Although traumatic chylothorax is predominantly associated with penetrating injuries, instances following blunt trauma, as a rare and challenging condition, ...
Single / Dual-Band Frequency and Polarization Switching Using Frequency Selective Surfaces for Terahertz Applications
Single / Dual-Band Frequency and Polarization Switching Using Frequency Selective Surfaces for Terahertz Applications
Abstract
This paper presents reconfigurable frequency and polarization FSS-based with photoconductive switches in a single and dual-band operation for antenna applications ...
Quasi-two-dimensional van der Waals ferromagnetic semiconductor CrGeTe<sub>3</sub> studied by THz spectroscopy
Quasi-two-dimensional van der Waals ferromagnetic semiconductor CrGeTe<sub>3</sub> studied by THz spectroscopy
The quasi-two-dimensional van der Waals intrinsic ferromagnetic semiconductor CrGeTe<sub>3</sub> possesses both a narrow semiconductor band gap and ferromagnetic proper...
Terahertz emission spectroscopy of multiferroic bismuth ferrite : insights into ultrafast currents and phonon dynamics
Terahertz emission spectroscopy of multiferroic bismuth ferrite : insights into ultrafast currents and phonon dynamics
Spectroscopie d émission Térahertz du ferrite de bismuth multiferroïque : aperçus sur les courants ultra-rapides et la dynamique des phonons
La technologie térahert...
Frequency‐Dependent Demethylation of Cancer DNAs by High‐Power Terahertz Radiation
Frequency‐Dependent Demethylation of Cancer DNAs by High‐Power Terahertz Radiation
A high‐power broadband terahertz (THz) system generating THz waves at the 10 mW level is developed to study the demethylation behavior of cancer DNAs by strong THz‐field irradiatio...
THz Electron Paramagnetic Resonance / THz Spectroscopy at BESSY II
THz Electron Paramagnetic Resonance / THz Spectroscopy at BESSY II
The THz beamline at BESSY II employs high power broadband femto- to picosecond long THz pulses for magneto-optical THz and FIR studies. A newly designed set-up exploits the unique ...
Spin-wave band gaps created by rotating square rods in triangular lattice magnonic crystals
Spin-wave band gaps created by rotating square rods in triangular lattice magnonic crystals
Recently, magnonic crystals which are the magnetic counterparts of photonic crystals or phononic crystals are becoming a hot area of research. In this paper, band structure of two-...
Experimental study on composite traveling wave resonance of high-speed thin-web spur gear of turbofan engine with a newfound phenomena
Experimental study on composite traveling wave resonance of high-speed thin-web spur gear of turbofan engine with a newfound phenomena
The occurrence of gear traveling wave resonance has the characteristics of occasionality, concealment and serious consequences, which has become first of the main factors threateni...

