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Full particle-in-cell simulation of the interaction between two plasmas for laboratory experiments on the generation of magnetized collisionless shocks with high-power lasers

机译:具有高功率激光器的磁化碰撞冲击的两种等离子体之间的相互作用的完整粒子电池仿真

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摘要

A preliminary numerical experiment is conducted for laboratory experiments on the generation of magnetized collisionless shocks with high-power lasers by using one-dimensional particle-in-cell simulation. The present study deals with the interaction between a moving aluminum plasma and a nitrogen plasma at rest. In the numerical experiment, the nitrogen plasma is unmagnetized or magnetized by a weak external magnetic field. Since the previous study suggested the generation of a spontaneous magnetic field in the piston (aluminum) plasma due to the Biermann battery, the effect of the magnetic field is of interest. Sharp jumps of the electron density and magnetic field are observed around the interface between the two plasmas as long as one of the two plasmas is magnetized, which indicates the formation of tangential electron-magneto-hydro-dynamic discontinuity. When the aluminum plasma is magnetized, strong compression of both the density and the magnetic field takes place in the pure aluminum plasma during the gyration of nitrogen ions in the aluminum plasma region. The formation of a shock downstream is obtained from the shock jump condition. The results suggest that the spontaneous magnetic field in the piston (aluminum) plasma plays an essential role in the formation of a perpendicular collisionless shock. Published under license by AIP Publishing.
机译:通过使用一维粒子内仿真对高功率激光器产生磁化碰撞冲击的实验室实验进行初步数值实验。本研究涉及移动铝等离子体和静止氮等离子体之间的相互作用。在数值实验中,氮等离子体由弱外部磁场磁化或磁化。由于先前的研究表明,由于Biermann电池,因此由于Biermann电池而产生活塞(铝)等离子体中的自发磁场,因此磁场对感兴趣的影响。只要两种等离子体中的一个被磁化,就会观察到电子密度和磁场的急剧跳跃,从而磁化两种等离子体中的一个,这表明了切向电子 - 磁 - 液动态不连续性的形成。当磁化铝等离子体被磁化时,在铝等离子体区域的氮离子的覆盖期间,在纯铝等离子体中发生强烈的压缩。从冲击跳转条件获得休克下游的形成。结果表明,活塞(铝)等离子体中的自发磁场在形成垂直的碰撞休克时起着重要作用。通过AIP发布在许可证下发布。

著录项

  • 来源
    《Physics of plasmas》 |2019年第3期|共8页
  • 作者单位

    Nagoya Univ Inst Space Earth Environm Res Nagoya Aichi 4648601 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Univ Tokyo Dept Earth &

    Planetary Sci Tokyo 1130033 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Osaka Univ Grad Sch Engn Osaka 5650871 Japan;

    Kyushu Univ Fac Engn Sci Kasuga Fukuoka 8168580 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Kyushu Univ Fac Engn Sci Kasuga Fukuoka 8168580 Japan;

    Osaka Univ Inst Laser Engn Osaka 5650871 Japan;

    Osaka Univ Inst Laser Engn Osaka 5650871 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

    Aoyama Gakuin Univ Dept Phys &

    Math Sagamihara Kanagawa 2525258 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;
  • 关键词

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