Li Junna, Wang Yongliang, He Shi, Chen Xuliang, Qiu Aici
State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an 710024, China.
Rev Sci Instrum. 2022 Aug 1;93(8):084704. doi: 10.1063/5.0101573.
Pulse generators with a sub-nanosecond rise time are typically used to calibrate measurement probes in electromagnetic pulses. However, the technological dilemma between high voltage and low inductance has not been adequately addressed in this context. In this paper, the authors investigate the effects of the circuit and structural parameters on the generator. To reduce the rise time of the output voltage of the generator to a few hundred picoseconds, the inductance of its structure and the spark gap needs to be strictly controlled. We use SF at 1 MPa as an insulating gas for the spark gap to reduce the inductance of the capacitor and the switch to the order of several nH. The results of theoretical calculations and simulations were used to design and test two generators that used a coaxial ceramic capacitor and three plate ceramic capacitors, respectively. The experimental results showed that a double-exponential pulse voltage with a sub-nanosecond rise time could be obtained in a 50 Ω transmission line in both generators. The generator with the coaxial ceramic capacitor had better characteristics than the one that used three plate ceramic capacitors with a rise time of 630-860 ps when the peak output voltage was in the range of 5-30 kV.
上升时间亚纳秒级的脉冲发生器通常用于校准电磁脉冲中的测量探头。然而,在这种情况下,高电压和低电感之间的技术难题尚未得到充分解决。在本文中,作者研究了电路和结构参数对发生器的影响。为了将发生器输出电压的上升时间降低到几百皮秒,需要严格控制其结构电感和火花隙。我们使用1兆帕的SF作为火花隙的绝缘气体,将电容器和开关的电感降低到几纳亨量级。理论计算和模拟结果用于分别设计和测试使用同轴陶瓷电容器和三板陶瓷电容器的两种发生器。实验结果表明,两种发生器在50Ω传输线中均可获得上升时间亚纳秒级的双指数脉冲电压。当峰值输出电压在5 - 30kV范围内时,使用同轴陶瓷电容器的发生器比使用三板陶瓷电容器的发生器具有更好的特性,其上升时间为630 - 860皮秒。