Computational Techniques for Pulsed Power Design

R. Spielman
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Abstract

As modern pulsed-power drivers increase in size and complexity, traditional experimentally based design techniques become impractical. A combination of computational capabilities is necessary for the timely and cost effective design of multi-MJ, 100-ns pulsed power generators operating above 6 MV and 20 MA. We describe the use of several codes needed to optimize the performance of the various pulsed power components in such a generator. The basic elements of machine design require: detailed circuit design codes, and 3-D electrostatic codes, in a 3-D electromagnetic codes/particle-in-cell codes. Circuit codes such as Screamer, Bertha, and PSpice are critically needed to optimize the overall performance of the generator by determining the circuit values of the individual generator components. Very fast codes are needed to complete this iterative solution. The 3-D electrostatic codes such as Coulomb, HiPhi, and Emphasis/Eiger are the workhorses of electrical design and provide the initial mechanical design of most of the high voltage components. Issues such as electric field grading, triple point shielding, electrical field shaping, and field enhancements are only a few of the design elements that must be considered. Electrostatic modeling is inadequate in situations where time- and space-dependent fields exist. In such cases, time-dependent electromagnetic calculations in three spatial dimensions are critical. Maxwell 3-D and Emphasis/Nevada can be used to model the time-dependent electromagnetic effects on critical accelerator elements such as gas switches and complex conducting structures. Using E&M PIC codes such as Quicksilver in 3-D, we can model the performance of vacuum insulator stacks, magnetically insulated vacuum transmission lines (MITLs), and vacuum convolutes. Critical issues include vacuum electron flow, electron losses, and convolute magnetic field nulls. We present examples of real world calculations using these tools on state-of-the-art pulsed power designs
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脉冲功率设计的计算技术
随着现代脉冲功率驱动器尺寸和复杂性的增加,传统的基于实验的设计技术变得不切实际。对于工作在6 MV和20 MA以上的多兆焦耳、100毫纳脉冲发电机来说,计算能力的结合是及时和经济有效的设计所必需的。我们描述了几个代码的使用,以优化这种发电机中各种脉冲功率组件的性能。机器设计的基本要素要求:详细的电路设计代码、三维静电代码、三维电磁代码/细胞内粒子代码。电路代码,如Screamer, Bertha和PSpice是通过确定单个发电机组件的电路值来优化发电机整体性能的关键。需要非常快的代码来完成这个迭代解决方案。库仑(Coulomb)、HiPhi、艾格(Emphasis/Eiger)等三维静电编码是电气设计的主力军,为大多数高压元件提供了初始机械设计。诸如电场分级、三点屏蔽、电场成形和电场增强等问题只是必须考虑的设计元素中的一小部分。静电建模在存在时空依赖场的情况下是不充分的。在这种情况下,三维空间中随时间变化的电磁计算至关重要。Maxwell - 3-D和Emphasis/Nevada可用于模拟关键加速器元件(如气体开关和复杂导电结构)上随时间变化的电磁效应。利用三维的E&M PIC代码(如Quicksilver),我们可以模拟真空绝缘子堆、磁绝缘真空传输线(MITLs)和真空线圈的性能。关键问题包括真空电子流,电子损失,和涡旋磁场零。我们给出了使用这些工具在最先进的脉冲功率设计上进行实际计算的例子
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