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Pulsed Power Hydrodynamics: A Discipline Offering High Precision Data for Motivating and Validating Physics Models

机译:脉冲功率流体动力学:一条学科,为激励和验证物理模型提供高精度数据

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The discipline of pulsed power hydrodynamics is a new application of low-impedance, pulsed power technology, developed to study implosion hydrodynamics, instabilities, turbulence, and material properties in a highly precise, controllable environment at the extremes of pressure and material velocity. The discipline of pulsed power hydrodynamics arose in response to the need for economical, high-precision data to validate sophisticated numerical models used in current numerical simulations and to motivate the development of new models for future simulations. The international capability in pulsed power technology that has evolved over several decades in response to numerous other programmatic needs played a pivotal role in the development of the new discipline by enabling demonstrations of the techniques and production of introductory data long before a dedicated facility could be conceived, planned, and built. The high-precision, cylindrically imploding liner is the tool most frequently used to convert electromagnetic energy into the hydrodynamic (particle kinetic) energy needed to drive strong shocks, quasi-isentropic compression, or large volume adiabatic compression for the experiments. At typical parameters, a 30-gr, 1-mm- thick liner with an initial radius of 5 cm, driven by a current of 20 MA, can be accelerated to 7.5 km/sec producing mega-bar shocks in medium density targets. Velocities up to 20 km/sec and pressures 20 Mbar in high density targets are possible. The Atlas facility, designed and built by Los Alamos, houses the world's first laboratory pulsed power system designed specifically to explore this relatively new family of pulsed power applications. Constructed in the year 2000 and commissioned in August 2001, Atlas is a 24-MJ, high-performance capacitor bank delivering currents up to 30 Megamperes with a rise time of 5 to 6 musec. The first Atlas liner implosion experiments were conducted in September 2001, and 16 experiments were conducted in - - the first year of operation before Atlas was disassembled to be moved to the Nevada Test Site, where experiments began again in July 2005. Applications of pulsed power hydrodynamics techniques currently include material property topics such as: exploration of material strength at high rates of strain; material failure including fracture, damage, and spall; and interfacial dynamics at high relative velocities and high interfacial pressures. Implosion dynamics and a variety of complex hydrodynamic geometries have been explored and experiments to explore perturbation growth and transition to turbulence are under consideration. Longer term applications include the study of the behavior and properties of strongly coupled plasmas and the equation of state of metals and non-metals at pressures above 10 Mbar. This paper will provide an overview of the programmatic evolution that led to the birth of the discipline of pulsed power hydrodynamics.
机译:脉冲功率流体动力学的纪律是一种新的低阻抗,脉冲功率技术的应用,用于在压力和材料速度极低,可控环境中的高度精确,可控环境中研究灌注流体动力学,稳定性,湍流和材料特性。脉冲功率流体动力学的纪律是为了响应经济,高精度数据的需求,以验证当前数值模拟中使用的复杂数值模型,并激励开发未来模拟的新模型。在几十年内发展的脉冲电力技术的国际能力在响应许多其他方案需求中,通过在可以构思的专用设施之前长期的技术和介绍数据的制作,在新学科的发展中发挥了关键作用,计划和建造。高精度,圆柱形涂布衬垫是最常用于将电磁能量转换为流体动力学(粒子动力学)能量的工具,以驱动强烈的冲击,准等熵压缩或大容量绝热压缩进行实验。在典型的参数下,由20 mA电流驱动的初始半径为5厘米的30-GR,1毫米厚的衬里,可以加速到7.5 km / sec在中密度目标中产生兆杆冲击。速度高达20 km / sec和压力&高密度目标中的20毫巴是可能的。由Los Alamos设计和建造的地图集设施,拥有全球首款实验室脉冲电力系统,专门设计用于探索这一相对较新的脉冲电源应用家族。在2000年和2001年8月委托的2000年委托建设,Atlas是一个24 MJ,高性能电容器组,提供高达30兆珀的电流,上升时间为5至6个Musec。第一个地图集衬里爆炸实验是在2001年9月进行的,在拆卸搬迁到内华达试验现场的地图集之前进行了16个实验,在拆卸到内华达试验网站之前,在2005年7月再次开始。脉冲功率的应用流体动力学技术目前包括材料物业主题,如:高菌株率高的材料强度探索;材料失效包括骨折,损坏和倒置;高相位速度和高界面压力下的界面动力学。爆炸动力学和各种复杂的流体动力学几何形状已经探索和实验,以探讨扰动生长和过渡到湍流的转变。长期应用包括研究强耦合等离子体的行为和性质以及10毫巴高于10毫巴的压力下的金属和非金属的等式。本文将概述导致脉冲功率流体动力学学科的诞生。

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