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Effect of polarity on beam and plasma target formation in a dense plasma focus

机译:极性对致密等离子体聚焦中梁和等离子体靶形成的影响

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摘要

Dense plasma focus (DPF) devices are conventionally operated with a polarity such that the inner electrode (IE) is the anode. It has been found that interchanging the polarity of the electrodes (i.e., IE as the cathode) can cause an order of magnitude decrease in the neutron yield. This polarity riddle has previously been studied empirically through several experiments and is yet not well understood. We have performed kinetic simulations using the particle-in-cell modeling to investigate the problem. This is the first time that both polarities have been studied with simulations in great detail. In our simulations, we have modeled the entire beam and plasma target formation processes, but we did not consider differences in break-down conditions caused by the two polarities. We have found that when using reverse polarity ions are still accelerated and, in fact, attain similar energy spectra as in the standard polarity case. The difference is that the fields are flipped and thus ions are accelerated in the opposite direction. So, in the reverse polarity case, the majority of the "plasma target" (formed by the imploding plasma) is in the opposite direction of the beam, and thus, the beam hits the IE and produces few neutrons. With a better inner electrode configuration, reverse polarity is able to create a high-quality ion beam as well as a high-density target. Both can be comparable to that generated by standard polarity. Furthermore, we will show that it is easier to add an additional solid catcher target to a DPF device with reverse polarity, potentially enabling it to generate more neutrons than standard polarity. Published under license by AIP Publishing.
机译:致密等离子体焦点(DPF)装置通常以极性操作,使得内电极(IE)是阳极。已经发现,互换电极的极性(即,即阴极)可以导致中子产量的幅度减小级。此前,这种极性谜语先后通过了几个实验进行了经验研究,但尚未理解。我们使用粒子内建模进行了动力学模拟来研究问题。这是第一次非常详细地研究了两种极性。在我们的模拟中,我们已经建模了整个梁和等离子体目标形成过程,但我们没有考虑由两个极性引起的分解条件的差异。我们发现,当使用反极性离子仍然加速时,实际上,与标准极性情况一样达到类似的能谱。不同之处在于,磁场被翻转,因此离子在相反方向上加速。因此,在反极性外壳中,大多数“等离子体靶”(由爆发等离子体形成)在光束的相反方向上,因此,该光束撞击IE并产生少量中子。利用更好的内电极配置,反极性能够产生高质量的离子束以及高密度目标。两者都可以与标准极性产生的相当。此外,我们将表明,通过反向极性将额外的固体捕集目标添加到DPF器件上更容易,可能使其能够产生比标准极性更多的中子。通过AIP发布在许可证下发布。

著录项

  • 来源
    《Physics of plasmas 》 |2019年第4期| 共10页
  • 作者单位

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94550 USA;

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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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