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Mechanism and characteristics on the electric explosion of Al/Ni reactive multilayer foils

机译:Al / Ni反应性多层箔电爆炸的机理与特性

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摘要

Al/Ni multilayer foils were integrated with high voltage initiators using conventional microelectronic processing techniques and electrically exploded at an extremely high heating rate. In order to increase the knowledge about the electric explosion process of Al/Ni foils, several samples with different bilayer thicknesses, bridge dimensions, and capacitor voltages were tested. Time dependent voltage and current waveforms, energy depositions, and average flier velocities were measured and compared. The application of Al/Ni multilayers significantly increased the flier velocity and energy deposition of the device. The stored chemical energy of Al/Ni multilayer foils indeed contributed to the flier velocity increase, according to the experimental observations that the 225 nm bilayer bridges with the largest heat of reaction resulting in the highest flier velocities of all. Analysis of the experimental results allows us to prove that the electric explosion process of Al/Ni foils consisted of three stages. First, the Al layers were heated to vaporize. Then, the condensed AlNi grains started to nucleate due to exothermic mixing and subsequently evaporated with continuous energy deposition. Finally, the metal vapors ionized and formed plasma. These results provide fundamental understanding about electric explosion of Al/Ni reactive multilayer foils, and also enable us to improve the reliability and energy efficiency of electrically exploded Al/Ni multilayers for specific applications. Published under license by AIP Publishing.
机译:使用常规微电子加工技术,将Al / Ni多层箔与高压引发剂集成在一起,并以极高的加热速率进行电爆炸。为了增加对Al / Ni箔电爆炸过程的了解,测试了几个具有不同双层厚度,电桥尺寸和电容器电压的样品。测量并比较了随时间变化的电压和电流波形,能量沉积和平均飞行速度。 Al / Ni多层膜的应用显着提高了器件的飞行速度和能量沉积。实验观察到,225 nm双层桥以最大的反应热桥接,从而产生了最高的飞行速度,根据实验观察结果,Al / Ni多层箔存储的化学能确实有助于飞行速度的提高。对实验结果的分析使我们能够证明Al / Ni箔的电爆炸过程包括三个阶段。首先,将Al层加热以汽化。然后,由于放热混合,凝结的AlNi晶粒开始成核,随后随着连续的能量沉积而蒸发。最终,金属蒸气离子化并形成等离子体。这些结果提供了有关Al / Ni反应性多层箔的电爆炸的基础知识,并且还使我们能够针对特定应用提高电爆炸Al / Ni多层的可靠性和能效。由AIP Publishing授权发布。

著录项

  • 来源
    《Applied Physics Letters》 |2019年第9期|093102.1-093102.5|共5页
  • 作者单位

    Beijing Inst Technol State Key Lab Explos Sci & Technol 5 South Zhongguancun St Beijing 100081 Peoples R China;

  • 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
  • 中图分类
  • 关键词

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