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Experimental, Numerical and Analytical Studies of the MHD-driven plasma jet, instabilities and waves.

机译:MHD驱动的等离子体射流,不稳定性和波动的实验,数值和分析研究。

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摘要

This thesis describes a series of experimental, numerical, and analytical studies involving the Caltech magnetohydrodynamically (MHD)-driven plasma jet experiment. The plasma jet is created via a capacitor discharge that powers a magnetized coaxial planar electrodes system. The jet is collimated and accelerated by the MHD forces.;We present three-dimensional ideal MHD finite-volume simulations of the plasma jet experiment using an astrophysical magnetic tower as the baseline model. A compact magnetic energy/helicity injection is exploited in the simulation analogous to both the experiment and to astrophysical situations. Detailed analysis provides a comprehensive description of the interplay of magnetic force, pressure, and flow effects. We delineate both the jet structure and the transition process that converts the injected magnetic energy to other forms.;When the experimental jet is sufficiently long, it undergoes a global kink instability and then a secondary local Rayleigh-Taylor instability caused by lateral acceleration of the kink instability. We present an MHD theory of the Rayleigh-Taylor instability on the cylindrical surface of a plasma flux rope in the presence of a lateral external gravity. The Rayleigh-Taylor instability is found to couple to the classic current-driven instability, resulting in a new type of hybrid instability. The coupled instability, produced by combination of helical magnetic field, curvature of the cylindrical geometry, and lateral gravity, is fundamentally different from the classic magnetic Rayleigh-Taylor instability occurring at a two-dimensional planar interface.;In the experiment, this instability cascade from macro-scale to micro-scale eventually leads to the failure of MHD. When the Rayleigh-Taylor instability becomes nonlinear, it compresses and pinches the plasma jet to a scale smaller than the ion skin depth and triggers a fast magnetic reconnection. We built a specially designed high-speed 3D magnetic probe and successfully detected the high frequency magnetic fluctuations of broadband whistler waves associated with the fast reconnection. The magnetic fluctuations exhibit power-law spectra. The magnetic components of single-frequency whistler waves are found to be circularly polarized regardless of the angle between the wave propagation direction and the background magnetic field.
机译:本文介绍了一系列涉及Caltech磁流体动力学(MHD)驱动的等离子体射流实验的实验,数值和分析研究。等离子流是通过电容器放电产生的,该电容器放电为磁化的同轴平面电极系统供电。通过MHD力对射流进行准直和加速。;我们提出了以天体磁塔为基线模型的等离子射流实验的三维理想MHD有限体积模拟。在模拟中利用紧凑的磁能/螺旋性注入,类似于实验和天体物理情况。详细的分析提供了对磁力,压力和流动效应相互作用的全面描述。我们描述了射流的结构和将注入的磁能转换为其他形式的过渡过程;当实验射流足够长时,它会经历整体扭结不稳定性,然后是由横向加速度引起的次生局部瑞利泰勒不稳定性。扭结不稳定。我们提出了在存在横向外部重力的情况下,等离子体通量绳的圆柱表面上的瑞利-泰勒不稳定性的MHD理论。发现瑞利-泰勒不稳定性与经典的电流驱动不稳定性耦合,从而导致了一种新型的混合不稳定性。由螺旋磁场,圆柱几何形状的曲率和侧向重力共同产生的耦合不稳定性与在二维平面界面处发生的经典磁瑞利-泰勒不稳定性有根本的不同;在实验中,这种不稳定性级联从宏观到微观最终导致MHD的失败。当瑞利-泰勒不稳定性变为非线性时,它会将等离子流压缩并压缩到小于离子趋肤深度的范围,并触发快速的磁重新连接。我们构建了专门设计的高速3D磁探头,并成功检测了与快速重新连接相关的宽带惠斯波的高频磁波动。磁波动表现出幂律谱。发现单频惠斯勒波的磁性成分是圆极化的,而与波的传播方向和背景磁场之间的角度无关。

著录项

  • 作者

    Zhai, Xiang.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 228 p.
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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