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Effects of Density Control on the Internal Plasma Dynamics and Current Drive in HIT-SI.

机译:密度控制对HIT-SI中内部等离子体动力学和电流驱动的影响。

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摘要

The Helicity Injected Torus with Steady Inductive Helicity Injection (HIT-SI) experiment investigates a method of current drive and spheromak formation through constant inductive helicity injection into a confinement volume of major radius 0.3 m. Using Steady Inductive Helicity Injection (SIHI) a DC plasma current is generated and formed in the confinement volume from the AC driven plasma injectors. Recent results have shown that helium plasmas can be used to condition the walls for deuterium plasmas. These deuterium plasmas have produced record toroidal currents (> 50 kA) and current amplifications (∼ 3) on HIT-SI. In addition density measurements indicate that deuterium plasmas are the first plasmas on HIT-SI to achieve a ratio of current density to electron density, j/n >10-14 A·m, an important indication of plasma quality. Internal magnetic field measurements show these high performance plasmas have suppressed fields indicative of a region of low lambda and that this region is built up and sustained during the injector drive. Currents in this low lambda region that do not link the injectors---named separatrix currents---are sustained up to 40 kA. Finally a model that predicts the build up of toroidal current from the density and injector current is developed. The implication of this model is that dynamo current drive can be entirely applied and does not need to result from instabilities in the plasma.
机译:带有恒定感应螺旋线注入的螺旋线注入圆环(HIT-SI)实验研究了通过恒定感应螺旋线注入到主半径为0.3 m的封闭空间中形成电流驱动和球形的方法。使用稳定的感应螺旋注入(SIHI),会产生直流等离子体电流,并在交流驱动的等离子体注入器的限制空间内形成该等离子体电流。最近的结果表明,氦等离子体可用于调节氘等离子体的壁。这些氘等离子体在HIT-SI上产生了创纪录的环形电流(> 50 kA)和电流放大(〜3)。另外,密度测量表明,氘等离子体是HIT-SI上第一个实现电流密度与电子密度之比j / n> 10-14 A·m的等离子体,这是等离子体质量的重要指示。内部磁场测量结果表明,这些高性能等离子体具有抑制的磁场,指示着低λ区域,并且该区域在喷射器驱动期间得到建立和维持。在不连接喷油器的低λ区域中的电流-名为setritrix电流-持续高达40 kA。最后,建立了一个根据密度和喷射器电流预测环形电流累积的模型。该模型的含义是,可以完全应用发电机电流驱动,而不必由等离子体的不稳定性引起。

著录项

  • 作者

    Victor, Brian Scott.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 287 p.
  • 总页数 287
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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