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Lower hybrid experiments using an interdigital line antenna on the reversed field pinch.

机译:在反向场夹点上使用叉指线天线进行较低的混合实验。

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摘要

Lower hybrid current drive has been offered as a means of improving confinement in the reversed field pinch by reducing tearing fluctuations. Modeling suggests that a slow wave launched at 800 MHz and an n∥ of 7.8 will penetrate to the region of maximum magnetic stochasticity and significantly reduce core tearing mode activity.;The particular constraints of the Madison Symmetric Torus lead to the use of a novel interdigital-line traveling wave antenna structure rather than the traditional waveguide grill antenna. Several generations of this antenna type have been constructed and installed in MST. Scattering parameters have been treasured and with the addition of external tuning, the antenna suffers from less than -15 dB of reflection in most plasma conditions. The latest generation antenna has achieved ≳ 220 kW of applied power. Measurements of the launch spectrum show a lower peak n∥ than was designed. Subsequent modeling of the antenna geometry provides the reason and offers a method to compensate without fabricating another antenna.;The launch spectrum displays good directivity, and the antenna operates well in a variety of plasma conditions. Coupling is compared to theory and simulation and shows good qualitative agreement, though lack of good edge density profile measurements limits the prospects for predictive capability. The use of a plasma limiter has been shown to reduce the dependence of coupling on the plasma density, and local gas puffing has been shown to maintain the amount of loading even in low density or high confinement plasmas.;A hard x-ray survey of rf in standard MST plasmas shows a toroidal asymmetry in the hard x-ray flux. Modeling indicates that this flux is consistent with electrons being accelerated to high energies in the near-field of the antenna. Analysis indicates that power losses to these electrons may be on the order of several percent of the input power.
机译:较低的混合电流驱动已被提供为通过减小撕裂波动来改善反向场收缩的限制的手段。建模表明,慢波在800 MHz处发射,n∥ 7.8的磁通将穿透到最大的磁随机性区域并显着降低铁芯撕裂模式的活动。;麦迪逊对称圆环的特殊约束导致使用新颖的叉指线行波天线结构而不是传统的波导格栅天线。在MST中已经构造并安装了几代这种天线类型。散射参数非常珍贵,加上外部调谐功能,在大多数等离子体条件下,天线的反射小于-15 dB。最新一代的天线已达到≳ 220 kW的施加功率。发射光谱的测量结果显示较低的峰值n∥比设计的。天线几何形状的后续建模提供了原因,并提供了一种无需制造其他天线即可进行补偿的方法。发射频谱显示出良好的方向性,并且天线在各种等离子体条件下也能很好地工作。尽管缺乏良好的边缘密度分布测量结果限制了预测能力的前景,但将其与理论和模拟进行了比较,并显示出良好的定性一致性。已证明使用等离子限制器可减少耦合对等离子密度的依赖性,并且即使在低密度或高限制等离子条件下,也可通过局部吹气来保持负载量。标准MST等离子体中的rf在硬X射线通量中显示出环形不对称性。建模表明,该通量与在天线近场中被加速为高能的电子一致。分析表明,这些电子的功率损耗可能约为输入功率的百分之几。

著录项

  • 作者

    Kaufman, Michael C.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 263 p.
  • 总页数 263
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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