Design of a Low-Voltage Traveling-Wave Tube Based on Double-Corrugated Waveguide with Wide Grating Slow-Wave Structure

This paper proposes a double-corrugated waveguide with wide grating (DCWWG) slow-wave structure and applies it to the design of a low-voltage terahertz traveling-wave tube (TWT). To improve the TWT’s efficiency, a phase-tapered slow-wave structure is proposed. A response surface model is developed to identify the optimal tapering scheme, which is then further optimized using a genetic algorithm. Within the frequency range of 205–235 GHz, the phase-tapered DCWWG TWT exhibits significantly higher saturated output power and gain compared to the uniform DCWWG TWT. The maximum output power of the phase-tapered DCWWG TWT reaches approximately 26 W, representing an increase of about 47% over the 19 W maximum output power of the uniform DCWWG TWT. Overall, the phase taper technique substantially enhances the output performance of the DCWWG TWT.

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Publication Details

Journal
Electronics
Published
2026-10-01
DOI
https://doi.org/10.3390/electronics15194491
Primary Topic
Gyrotron and Vacuum Electronics Research
Type
article
Field-Weighted Citation Impact
0.00
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article

Design of a Low-Voltage Traveling-Wave Tube Based on Double-Corrugated Waveguide with Wide Grating Slow-Wave Structure

Zhaowei Qu, Fang Zhu, Weilong Wang, Wenxin Liu et al.
Electronics
Gyrotron and Vacuum Electronics Research
article

Design of a Low-Voltage Traveling-Wave Tube Based on Double-Corrugated Waveguide with Wide Grating Slow-Wave Structure

Zhaowei Qu, Fang Zhu, Weilong Wang, Wenxin Liu, Zhaochuan Zhang
article en

Abstract

This paper proposes a double-corrugated waveguide with wide grating (DCWWG) slow-wave structure and applies it to the design of a low-voltage terahertz traveling-wave tube (TWT). To improve the TWT’s efficiency, a phase-tapered slow-wave structure is proposed. A response surface model is developed to identify the optimal tapering scheme, which is then further optimized using a genetic algorithm. Within the frequency range of 205–235 GHz, the phase-tapered DCWWG TWT exhibits significantly higher saturated output power and gain compared to the uniform DCWWG TWT. The maximum output power of the phase-tapered DCWWG TWT reaches approximately 26 W, representing an increase of about 47% over the 19 W maximum output power of the uniform DCWWG TWT. Overall, the phase taper technique substantially enhances the output performance of the DCWWG TWT.

ElectronicsVol. 15(19)
Chinese Academy of Sciences (CN), Aerospace Information Research Institute (CN), University of Chinese Academy of Sciences (CN)
Affordable and clean energy
Openalex Percentile: Top 14%
Gyrotron and Vacuum Electronics Research
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