Owens Thomas L
West Virginia High Technology Consortium Foundation, 1000 Galliher Drive, Fairmont, West Virginia 26554, USA.
Rev Sci Instrum. 2008 Mar;79(3):034701. doi: 10.1063/1.2836329.
A highly efficient, highly reliable pulsed-power system has been developed for use in high power, repetitively pulsed inductive plasma thrusters. The pulsed inductive thruster ejects plasma propellant at a high velocity using a Lorentz force developed through inductive coupling to the plasma. Having greatly increased propellant-utilization efficiency compared to chemical rockets, this type of electric propulsion system may one day propel spacecraft on long-duration deep-space missions. High system reliability and electrical efficiency are extremely important for these extended missions. In the prototype pulsed-power system described here, exceptional reliability is achieved using a pulse-compression circuit driven by both active solid-state switching and passive magnetic switching. High efficiency is achieved using a novel ring architecture that recovers unused energy in a pulse-compression system with minimal circuit loss after each impulse. As an added benefit, voltage reversal is eliminated in the ring topology, resulting in long lifetimes for energy-storage capacitors. System tests were performed using an adjustable inductive load at a voltage level of 3.3 kV, a peak current of 20 kA, and a current switching rate of 15 kA/micros.
一种高效、高可靠性的脉冲功率系统已被开发出来,用于高功率、重复脉冲感应等离子体推进器。脉冲感应推进器利用通过与等离子体的感应耦合产生的洛伦兹力,以高速喷射等离子体推进剂。与化学火箭相比,这种类型的电推进系统大大提高了推进剂利用效率,未来或许有一天可用于推动航天器执行长时间的深空任务。对于这些长时间任务而言,高系统可靠性和电效率极其重要。在此处描述的原型脉冲功率系统中,通过由有源固态开关和无源磁开关驱动的脉冲压缩电路实现了卓越的可靠性。通过一种新颖的环形架构实现了高效率,该架构在每次脉冲后,以最小的电路损耗在脉冲压缩系统中回收未使用的能量。另外一个好处是,环形拓扑结构消除了电压反转,从而延长了储能电容器的使用寿命。使用可调电感负载在电压为3.3 kV、峰值电流为20 kA以及电流切换速率为15 kA/微秒的条件下进行了系统测试。