王坤, 姜林村, 史宗谦, 徐鸿飞, 赵建材. 纳秒级铝单丝电爆炸过程中金属态–非金属态转变研究[J]. 中国电机工程学报, 2021, 41(8): 2957-2964. DOI: 10.13334/j.0258-8013.pcsee.201121
引用本文: 王坤, 姜林村, 史宗谦, 徐鸿飞, 赵建材. 纳秒级铝单丝电爆炸过程中金属态–非金属态转变研究[J]. 中国电机工程学报, 2021, 41(8): 2957-2964. DOI: 10.13334/j.0258-8013.pcsee.201121
WANG Kun, JIANG Lincun, SHI Zongqian, XU Hongfei, ZHAO Jiancai. Metal-nonmetal Transition in Nanosecond Electrical Explosion of Aluminum Wires[J]. Proceedings of the CSEE, 2021, 41(8): 2957-2964. DOI: 10.13334/j.0258-8013.pcsee.201121
Citation: WANG Kun, JIANG Lincun, SHI Zongqian, XU Hongfei, ZHAO Jiancai. Metal-nonmetal Transition in Nanosecond Electrical Explosion of Aluminum Wires[J]. Proceedings of the CSEE, 2021, 41(8): 2957-2964. DOI: 10.13334/j.0258-8013.pcsee.201121

纳秒级铝单丝电爆炸过程中金属态–非金属态转变研究

Metal-nonmetal Transition in Nanosecond Electrical Explosion of Aluminum Wires

  • 摘要: 脉冲电流驱动金属丝负载从金属态到非金属态的转变对理解等离子体电热不稳定性的演化有重要意义。该文利用高时空分辨率诊断手段和磁流体力学数值模拟,开展铝丝和镀膜铝丝在纳秒级脉冲电流作用下金属态-非金属态的转变过程。基于Ioffel-Regel条件、金属化密度和电阻率温度系数等分析铝丝从金属态转变为非金属态的过程,确定了铝丝对电热不稳定性最不稳定的状态。铝丝和镀膜铝丝在电爆炸初始阶段经历了相似的相态演化,出现了由电热不稳定性引起的条纹结构。在电压击穿时刻,铝丝的电阻率远高于标准金属的电阻率。铝丝在电压击穿之前已经完成金属态–非金属态的转变。该结果能为电流驱动金属负载构型的电热不稳定性研究奠定基础。

     

    Abstract: The metal-nonmetal transition of metallic wires driven by pulsed current is very important for understanding the evolution of plasma electrothermal instability. The metal-nonmetal transition in aluminum wire and coated aluminum wire under nanosecond pulsed current was investigated with optical diagnostic of high spatiotemporal resolution and magnetohydrodynamic simulation. The transition of aluminum wire from metallic state to nonmetallic state, as well as the most unstable state of electrothermal instability for aluminum wire, were analyzed based on Ioffel- Regel condition, metallization theory and the dependence of resistivity with respect to temperature. The bare and coated aluminum wires share common phase transition in the initial stage of the discharge with occurrence of stratified structures induced by electrothermal instability. The wire resistivity outclasses the maximum metallic resistivity for standard metals at the instant of voltage breakdown. The aluminum wires accomplish metal-nonmetal transition before the instant of voltage breakdown. The research provides the foundation for investigation on electrothermal instability in metallic load driven by pulsed current.

     

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