Design and simulation of 0.22 THz stepped frequency radar system based on high power gyrotron
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Affiliation:

1.School of Electronic Science and Engineering ( National Exemplary School of Microelectronics ), University of Electronic Science and Technology, Chengdu 610054, China;2.Institute of Applied Electronics, China Academy of Engineering Physics, Mianyang 621900, China

Clc Number:

TN958.5

Fund Project:

Supported by National Natural Science Foundation of China (61971097), Sichuan Science and Technology Program(2018HH0136)

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    Abstract:

    A stepped frequency imaging radar which based on 0.22 THz high-power gyrotron oscillator was designed. The dual Cassegrain antenna with separate transceiver was used for transmitting stepped frequency pulse signal. Frequency adjustment of gyrotron oscillator was achieved by adjusting gyrotron electron beam voltage or superconducting magnet strength. The design schemes for imaging radar were given, the radar detected range and high-resolution range profile of the stepped frequency radar system were analyzed, and inverse synthetic aperture radar (ISAR) imaging simulation was carried out. The results of theoretical calculation and simulation show that the radar could detect the target with scattering area of 0.01 m2 by 1.982 km and distinguish the targets with a distance of 2 cm at 500 m. The radar can be used for investigations on target recognition of small objects such as UAV which can take concealed weapons and threat material.

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ZHANG Cheng-Xin, YAN Yang, FU Wen-Jie. Design and simulation of 0.22 THz stepped frequency radar system based on high power gyrotron[J]. Journal of Infrared and Millimeter Waves,2020,39(6):728~734

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History
  • Received:February 01,2020
  • Revised:November 17,2020
  • Adopted:April 14,2020
  • Online: November 10,2020
  • Published:
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