Patel Ankur, Chandra Romesh, Basak Ankan, K Senthil, Roy Amitava
Accelerator and Pulse Power Division, Bhabha Atomic Research Centre, Trombay, Mumbai 400 085, India.
Rev Sci Instrum. 2022 Sep 1;93(9):094703. doi: 10.1063/5.0090737.
Pulse power systems have a wide range of applications, one of which is microwave generation. Microwave emission is associated with a certain time delay between the application of a high voltage pulse and the generation of the microwave signal. This time delay is known as microwave delay time, and it depends on the time period of the microwave signal being generated. As the time period of the microwave signal increases, the required input electrical pulse duration also goes up. To achieve this, a pulse forming network (PFN) based Marx generator is proposed. The Bipolar Marx generator is preferred over the uni-polar Marx generator to obtain the high voltage high current pulse. This also helps in maintaining the impedance requirement for Backward Wave Oscillator (BWO) devices that generate the microwave pulse. To the best of our knowledge, PFN based Marx generators have been developed up to 400 kV. Here, a bipolar Marx generator has been designed with ratings of 800 kV peak voltage, 10 kA peak current, and 150 ns flattop pulse duration. The design includes analytical calculations and numerical analysis by electromagnetic simulation. The triggering method to get a wide triggering range has also been discussed. The design values have also been experimentally verified, and the resulting parameters were applied to a BWO to simulate the microwave power that it can produce. A peak microwave power of ∼1 GW has been observed in the particle-in-cell simulation.
脉冲功率系统有广泛的应用,其中之一是微波产生。微波发射与施加高压脉冲和产生微波信号之间存在一定的时间延迟相关。这个时间延迟被称为微波延迟时间,它取决于所产生的微波信号的周期。随着微波信号周期的增加,所需的输入电脉冲持续时间也会增加。为实现这一点,提出了一种基于脉冲形成网络(PFN)的马克思发生器。与单极马克思发生器相比,双极马克思发生器更适合获得高电压大电流脉冲。这也有助于满足产生微波脉冲的返波振荡器(BWO)器件的阻抗要求。据我们所知,基于PFN的马克思发生器已发展到400 kV。这里,设计了一种双极马克思发生器,其额定值为峰值电压800 kV、峰值电流10 kA和平顶脉冲持续时间150 ns。该设计包括解析计算和通过电磁仿真进行的数值分析。还讨论了获得宽触发范围的触发方法。设计值也经过了实验验证,并将所得参数应用于BWO以模拟其能够产生的微波功率。在粒子模拟中观察到了约1 GW的峰值微波功率。