基于主试验台的大电流脉冲传输研究进展

W. Zou, Guilin Wang, J. Dan, S. Duan, Bing Wei, Zhaohui Zhang
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引用次数: 0

摘要

脉冲电流的高效传输对于惯性约束聚变(ICF)、材料动态特性研究等高能量密度物理实验至关重要,在负载附近的电极表面可以实现数MA/cm的电流密度。大电流脉冲向负载的传输不依赖于发电,必须处理传输线结构跃迁、大质量电子/离子绝缘、~MA/cm电流密度、兆格磁场及其向导体的扩散等问题。过渡电流损耗和MG磁场对导体的穿透会导致阳极阴极间隙闭合,甚至导致传输失败。为了了解毫安/厘米范围内的脉冲传输特性,在主试验台进行了两类实验。在不锈钢电极传输实验中,用位移干涉仪系统记录了导体在几个MG磁场下的膨胀速度,用阴影成像系统记录了致密等离子体的演化过程。对实验进行了一维磁流体力学(MHD)模拟,推导出不锈钢热等离子体形成的阈值磁场为3.3 MG。在同轴-锥形过渡实验中,推导了不同状态下电流密度为MA/cm时的电流传输效率。本文将介绍脉冲功率平台、实验设计和实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Progress on high current pulse transmission based on the Primary Test Stand
High efficiency pulse current transmission is critical important for inertial confinement fusion (ICF), dynamic material property research and other high energy density physics experiments, in which current density in several MA/cm will achieved on the electrode surface near the load. Independent on power generation, high current pulse transmission to load has to deal with structural transition in transmission line, massive electrons/ions insulation, ~MA/cm current density, megagauss (MG) magnetic field and its diffuse into conductor. The current loss across transition and the penetration of MG magnetic fields into conductors may cause anode-cathode gap closure, and even transmission failure. In order to understand the pulse transmission property in MA/cm range, two types of experiments were carried out on the Primary Test Stand. In the stainless steel electrode transmission experiments, the expansion velocity of conductor at several MG magnetic field was recorded with displacement interferometer system and the evolution process of dense plasma were recorded by shadowgraphy system. One dimensional magneto-hydrodynamics (MHD) simulations to the experiments were carried out and a threshold magnetic field of 3.3 MG for thermal plasma formation was inferred for stainless steel. In the coaxial-conical transition experiment, current transmission efficiency under MA/cm current density was derived for different states. In this paper, the pulsed power platform, the experimental designs and results will be presented.
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