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Numerical model for electrical explosion of copper wires in water

机译:水中铜线爆炸的数值模型

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摘要

This paper presents a simple but quite accurate numerical model for analyzing electrical explosion of copper wires in water. The numerical model solves a circuit equation coupled with one-dimensional magneto-hydrodynamic (MHD) equations with the help of appropriate wide-range equation of state (EOS) and electrical conductivity for copper. The MHD equations are formulated in a Lagrangian form to identify the interface between the wire and surrounding water clearly. A quotidian EOS (QEOS) that is known as the simplest form of EOS is utilized to build wide-range EOS for copper. In the QEOS, we consider the liquid-vapor phase transition, which is critical in analyzing the wire explosion system. For the electrical conductivity of copper, a semi-empirical set of equations covering from solid state to partially ionized plasma state are employed. Experimental validation has been performed with copper wires of various diameters, which are exploded by a microsecond timescale pulsed capacitive discharge. The simulation results show excellent agreements with the experimental results in terms of temporal motions of a plasma channel boundary and a shock front as well as current and voltage waveforms. It is found that the wire explodes (vaporizes) along the liquid branch of a binodal curve irrespective of wire dimension and operating voltage. After the explosion, the wire becomes a plasma state right away or after the current pause (dwell), depending on the operating conditions. It is worth noting that such a peculiar characteristic of wire explosion, i.e., current pause and restrike, is well simulated with the present numerical model. In particular, it is shown that the wire cools down along the vapor branch of the binodal curve during the current dwell, due to a significant difference of thermodynamic characteristics across the binodal curve. The influence of radiation for studying nonideal plasmas with a wire explosion technique and a physical process for shock wave formation by an exploding wire is discussed as well.
机译:本文提出了一个简单而精确的数值模型来分析水中铜线的电爆炸。数值模型借助适当的宽范围状态方程(EOS)和铜的电导率来求解与一维磁流体动力学(MHD)方程相结合的电路方程。 MHD方程以拉格朗日形式表示,以清楚地识别导线和周围水之间的界面。称为EOS的最简单形式的报价EOS(QEOS)用于构建铜的宽范围EOS。在QEOS中,我们考虑了液体-蒸汽相变,这对于分析线爆炸系统至关重要。对于铜的电导率,采用了涵盖从固态到部分电离的等离子体态的半经验方程组。已经使用各种直径的铜线进行了实验验证,铜线被微秒级的时标脉冲电容性放电爆炸。在等离子体通道边界和冲击波前的瞬时运动以及电流和电压波形方面,仿真结果显示出与实验结果极好的一致性。已经发现,导线沿双曲线曲线的液体分支爆炸(蒸发),而与导线尺寸和工作电压无关。爆炸后,取决于操作条件,导线立即或在电流暂停(停顿)后变为等离子体状态。值得注意的是,用本数值模型很好地模拟了导线爆炸的这种特殊特性,即电流停顿和恢复。特别地,示出了由于在整个双曲线曲线上的热力学特性的显着差异,在电流停留期间,金属丝沿着双曲线曲线的蒸气分支冷却。还讨论了辐射对使用线爆炸技术研究非理想等离子体的影响以及通过爆炸线形成冲击波的物理过程。

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  • 来源
    《Journal of Applied Physics》 |2016年第20期|203301.1-203301.14|共14页
  • 作者单位

    Department of Nuclear Engineering, Seoul National University, Seoul 08826, South Korea;

    Department of Nuclear Engineering, Seoul National University, Seoul 08826, South Korea;

    Department of Nuclear Engineering, Seoul National University, Seoul 08826, South Korea;

    Agency for Defense Development, Daejeon 34186, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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