K. Nagao, K. Sakurai, W. Takatsu, P. V. Thuần, T. Sugai, W. Jiang
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引用次数: 2
摘要
虚阴极振荡器(vircator)是一种很有前途的大功率微波振荡器件。简单和高性能是优点。然而,效率低和频率不稳定是严重的问题。为了提高振荡效率,通过对注入的电子束进行预调制,加强电磁波对电子束的反馈。采用双阳极和配置空腔是有效的。在本文中,我们讨论了双阳极来提高输出功率。实验在重复脉冲发电机“ETIGO-IV”上进行(最大输出:400 kV, 13 kA, 120 ns, 1 Hz)。利用喇叭天线对输出微波进行峰值功率和能量诊断。通过对高速数字示波器记录的信号进行快速傅立叶分析,得到微波频率。实验结果表明,微波峰值功率为~100MW。结果表明,采用双阳极可以提高虚阴极振荡器的输出效率。此外,使用模拟代码“MAGIC”进行了细胞内粒子的模拟。将模拟结果与实验结果进行了比较,探讨了双阳极的效果以及进一步提高微波效率的可能途径。
High-Power Microwave Generation by Double-Anode Virtual Cathode Oscillator
The virtual cathode oscillator (vircator) is one of the promising devices oscillating high-power microwaves. Simplicity and high-power capability are advantages. However, the low efficiency and frequency stability are serious problems. To improve oscillation efficiency, strengthen the feedback of the electromagnetic wave to the electron beam by pre-modulating the injected electron beam. Using double-anode and configuring a cavity is effective. In this paper, we dealt a double-anode to improve output power. Experiments were carried out on a repetitively pulsed power generator “ETIGO-IV” (maximum output: 400 kV, 13 kA, 120 ns, 1 Hz). The output microwaves are diagnosed for peak power and energy by using horn antennas. The microwave frequency is obtained by fast-Fourier analysis of the signal recorded by a high-speed digital oscilloscope. From the experimental result, the microwaves are obtained peak power of ~100MW. These results are shown that the output of the virtual cathode oscillator can be progress by using the double-anode. In addition, particle-in-cell simulations were carried out by using a simulation code “MAGIC.” Simulation results are compared with experimental results to examine the effect of the double-anode and possible ways of further improvement of microwave efficiency.