Fan Yu-Wei, Zhong Hui-Huang, Li Zhi-Qiang, Shu Ting, Zhang Jian-De, Liu Jin-Liang, Yang Jian-Hua, Zhang Jun, Yuan Cheng-Wei, Luo Ling
College of Optoelectric Science and Engineering, National University of Defense Technology, Changsha 410073, People's Republic of China.
Rev Sci Instrum. 2008 Mar;79(3):034703. doi: 10.1063/1.2894212.
The improved magnetically insulated transmission line oscillator (MILO) is a gigawatt-class L-band high power microwave tube driven by a 550 kV, 57 kA, 50 ns electron beam. It has allowed us to generate 2.4 GW pulse of 22 ns duration. The recent progress of the improved MILO is presented in this paper. First, a field shaper cathode is introduced into the improved MILO to avoid the cathode flares in the triple point region. The experimental results show that the cathode flares are avoided, so the lifetime of the velvet cathode is longer than that of the taper cathode. Furthermore, the shot-to-shot reproducibility is better than that of the taper cathode. Second, In order to prolong the pulse duration and increase the radiated microwave power, a self-built 600 kV, 10 Omega, 80 ns pulser: SPARK-03 is employed to drive the improved MILO. Simulation and experimental investigation are performed. In simulation, when the improved MILO is driven by a 600 kV, 57 kA electron beam, high-power microwave is generated with output power of 4.15 GW, frequency of 1.76 GHz, and relevant power conversion efficiency of 12.0%. In experiments, when the diode voltage is 550 kV and current is 54 kA, the measured results are that the radiated microwave power is above 3.1 GW, the pulse duration is above 40 ns, the microwave frequency is about 1.755 GHz, and the power conversion efficiency is about 10.4%.
改进型磁绝缘传输线振荡器(MILO)是一种千兆瓦级的L波段高功率微波管,由550 kV、57 kA、50 ns的电子束驱动。它使我们能够产生持续时间为22 ns的2.4 GW脉冲。本文介绍了改进型MILO的最新进展。首先,在改进型MILO中引入了场整形阴极,以避免在三点区域出现阴极闪络。实验结果表明,阴极闪络得到了避免,因此天鹅绒阴极的寿命比锥形阴极更长。此外,逐发重复性比锥形阴极更好。其次,为了延长脉冲持续时间并增加辐射微波功率,采用了自行建造的600 kV、10 Ω、80 ns脉冲发生器:SPARK - 03来驱动改进型MILO。进行了模拟和实验研究。在模拟中,当改进型MILO由600 kV、57 kA的电子束驱动时,产生了高功率微波,输出功率为4.15 GW,频率为1.76 GHz,相关功率转换效率为12.0%。在实验中,当二极管电压为550 kV、电流为54 kA时,测量结果为辐射微波功率高于3.1 GW,脉冲持续时间高于40 ns,微波频率约为1.755 GHz,功率转换效率约为10.4%。