Author_Institution :
Key Lab. of High Power Microwave Sources & Technol., Inst. of Electron., Beijing, China
Abstract :
This paper reports the research work of an X-band sheet beam klystron with the aim of principle verification, which is fulfilled at the Institute of Electronics, Chinese Academy of Sciences. This paper includes two phases. The first phase is planned to build the sheet beam electron optics prototype tube using the closed periodically cusped magnetic focusing. The measured data shows that the rectangular beam with the cross section of 50 mm × 4 mm can propagate through ~ 300 mm from the cathode surface to the collector with the transmission of 92.4% at the voltage of 110 kV. This foregoing work successfully solves the beam formation and transportation and becomes the basis for developing the sheet beam klystron. In the second phase, the high-frequency interaction structure is designed and cold tested. The X-band sheet beam klystron is constructed and hot tested in the full voltage. The amplification characteristic can be observed near the voltage of 125 kV. For the drive power of 0.71 kW and the working frequency of 11.69 GHz, the output power of 2.8 MW is achieved with the 3 dB bandwidth of 30 MHz, and, correspondingly, the gain and the efficiency are 35.96 dB and 32.52%, respectively. At the same time, the beam transmission is 73.3%. An over 93% transmission is realized at the voltage of 135 kV, whereas the oscillation occurs in the tube. This research exhibits that the sheet beam klystron is a promising device for the high-power applications, whereas seeking the measures to overcome the oscillation is still an arduous task in the future.
Keywords :
electron beam focusing; electron optics; klystrons; oscillations; Chinese Academy of Sciences; Institute of Electronics; X-band sheet beam klystron; amplification characteristic; beam formation; beam transmission; beam transportation; cathode surface; drive power; high-frequency interaction structure; high-power applications; magnetic focusing; oscillation; principle verification; rectangular beam; sheet beam electron optics prototype tube; voltage 110 kV; Cathodes; Cavity resonators; Electron beams; Electron optics; Focusing; Klystrons; Structural beams; $X$-band; Beam-wave interaction; closed periodically cusped magnetic (PCM) focusing; electron gun; electron optics; high-frequency circuit; klystron; multigap cavity; sheet beam;