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Magnetic mirror end-plugged by field-reversed configurations formed via rotating magnetic fields

机译:磁镜通过旋转磁场形成的现场反转配置堵塞

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摘要

A novel magnetic mirror concept with field-reversed configurations (FRCs) formed via rotating magnetic fields (RMFs) serving as end plugs is proposed to improve the mirror's axial confinement. Single-particle orbit calculations suggest that the FRCs in the end plugs can reflect ions back into the central cell if their parallel speeds are not so fast that they can overcome the magnetic field gradient force from the X-point of the FRC to the midplane outside of the FRC. However, this effect is limited and is no different from that of adding a weak mirror cell to the central cell. When the inward Hall electric field generated by the RMFs is considered, an additional Lorentz force emerges that pushes the incoming ions back to the central mirror, thereby dramatically improving the confinement. The Lorentz force is related to the azimuthal drift speed times the radial component of the magnetic field. By surveying the particle phase space of the speeds, we find that this Lorentz force can reflect back or trap >90% of ions escaping from the central mirror given a sufficient Hall electric field in the RMF region. Finally, preliminary experimental results from the Keda Mirror with AXisymmetricity RMF/FRC are reported and show that with the RMFs on, the axial mirror confinement can increase by a factor of similar to 1.4 on average.
机译:提出了一种新颖的磁镜概念,其通过旋转磁场(RMF)形成用作端部插头的磁场(RMF)形成,以改善镜子的轴向限制。单粒子轨道计算表明,如果它们的平行速度不那么快,则端部插头中的FRC可以将离子反射回中央电池,因为它们可以克服从FRC的X点到外部的中间板克服磁场梯度力FRC。然而,这种效果是有限的,并且与向中央电池添加弱镜电池的效果没有不同。当考虑由RMF产生的内向霍尔电场时,出现额外的洛伦兹力,从而将进入的离子推回中央镜子,从而显着提高限制。洛伦兹力与磁场的径向分量的方位角漂移速度倍。通过测量速度的粒子相空间,我们发现该洛伦兹力可以在RMF区域中的一个足够的霍尔电场在中央镜中反射或捕获的陷阱或陷阱,90%的离子电场。最后,报告了具有轴对称RMF / FRC的KEDA镜的初步实验结果,并表明使用RMFS开启,轴向镜限制可以平均增加到1.4的因素。

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  • 来源
    《Physics of plasmas》 |2019年第10期|共12页
  • 作者单位

    Univ Sci &

    Technol China Dept Engn &

    Appl Phys Hefei 230026 Peoples R China;

    Univ Sci &

    Technol China Dept Engn &

    Appl Phys Hefei 230026 Peoples R China;

    Univ Sci &

    Technol China Dept Engn &

    Appl Phys Hefei 230026 Peoples R China;

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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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