Flat plate FCG experimental system for material studies

D. Goerz, D. Reisman, J. Javedani, J. T. Paladichuk, D. Hare, L. Tallerico, G. Earley, R. Kuklo, A. D. White
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引用次数: 2

Abstract

Magnetic flux compression generators (FCGs) driven by high explosives can produce extremely high magnetic fields that are useful in accelerating metal liners and sample materials to high velocities to study their properties. For material studies requiring extremely high energy and applied pressures, explosive FCGs can far surpass the typical performance of capacitor based systems. Flat plate generators (FPGs) are useful in many flux compression applications. They are well suited for doing material studies in planar geometries, and they enable the use of certain diagnostic techniques, most notably flash X-ray radiography, which would be difficult if not impossible to utilize in coaxial geometries. Typical flat-plate generators have rather slow-rising output currents. This can cause loads to deform significantly before the highest rate of current gain from the generator can be reached. Shearer et al. at LLNL overcame this handicap by developing a version of FPG that used a flat plate armature and contoured stator. A rectangular block of high explosive (HE) is lit by a row of detonators placed across the width of the HE at a select location along the length of the generator. As the HE burns, the armature takes a characteristic shape determined by the line initiation location. At the appropriate time, the armature first contacts the stator near the input end, then continues to expand into a shape resembling the contoured stator. At late time, the armature contacts the stator at a shallow 1 to 2 degree phasing angle, which rapidly sweeps flux into the load, resulting in a fast current rise time. We have constructed a similar type generator for our present experimental work. It is capable of delivering 20 MA of current with a 2 to 4 μs exponential rise time into suitable loads. This paper describes the design of LLNL's flat-plate FCG, along with results of modeling and simulation performed for its development. Experiments have been carried out using the FPG with seed currents ranging from 0.75 to 1.6 MA using capacitor banks, and up to 2 MA using a helical FCG. Accurate measurements of input and output currents have been made and performance agrees remarkably well with MHD simulations. Challenges faced with calibrating diagnostics and fielding these types of experiments will also be discussed.
平板FCG材料研究实验系统
由烈性炸药驱动的磁通压缩发生器(FCGs)可产生极高的磁场,可用于将金属衬里和样品材料加速到高速以研究其性质。对于需要极高能量和施加压力的材料研究,爆炸性FCGs可以远远超过基于电容器的系统的典型性能。平板发生器(fpga)在许多通量压缩应用中是有用的。它们非常适合在平面几何中进行材料研究,并且它们能够使用某些诊断技术,最著名的是闪光x射线照相,这在同轴几何中很难使用,如果不是不可能的话。典型的平板发电机输出电流上升相当缓慢。这可能会导致负载在达到发电机的最高电流增益率之前显著变形。LLNL的Shearer等人克服了这一障碍,开发了一种使用平板电枢和轮廓定子的FPG版本。高爆药(HE)的矩形块被一排雷管点燃,雷管沿着发生器的长度沿着高爆药的宽度放置在选定的位置。当HE燃烧时,电枢呈现由线路起始位置决定的特征形状。在适当的时候,电枢首先接触输入端附近的定子,然后继续扩展成类似轮廓定子的形状。在后期,电枢与定子以1 ~ 2度的浅相位角接触,迅速将磁通扫入负载,导致电流上升时间快。我们已经为我们目前的实验工作构造了一个类似的发电机。它能够以2到4 μs的指数上升时间向合适的负载提供20 MA的电流。本文介绍了LLNL平板FCG的设计,以及为其开发所进行的建模和仿真结果。实验已经进行了使用FPG种子电流范围从0.75到1.6 MA使用电容器组,并高达2 MA使用螺旋FCG。对输入和输出电流进行了精确测量,其性能与MHD模拟结果非常吻合。还将讨论校准诊断和进行这些类型的实验所面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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