Kruezi U, Stoschus H, Schweer B, Sergienko G, Samm U
Institute of Energy and Climate Research, Plasma Physics, Forschungszentrum Jülich GmbH, Association EURATOM-FZJ, Partner in the Trilateral Euregio Cluster, Jülich, Germany.
Rev Sci Instrum. 2012 Jun;83(6):065107. doi: 10.1063/1.4707150.
A supersonic helium beam diagnostic, based on the line-ratio technique for high resolution electron density and temperature measurements in the plasma edge (r/a > 0.9) was designed, built, and optimised at TEXTOR (Torus Experiment for Technology Oriented Research). The supersonic injection system, based on the Campargue skimmer-nozzle concept, was developed and optimised in order to provide both a high neutral helium beam density of n(0) = 1.5 × 10(18) m(-3) and a low beam divergence of ±1° simultaneously, achieving a poloidal resolution of Δ(poloidal) = 9 mm. The setup utilises a newly developed dead volume free piezo valve for operation in a high magnetic field environment of up to 2 T with a maximum repetition rate of 80 Hz. Gas injections are realised for a duration of 120 ms at a repetition rate of 2 Hz (duty cycle 1/3). In combination with a high sensitivity detection system, consisting of three 32 multi-channel photomultipliers (PMTs), measurements of edge electron temperature and density with a radial resolution of Δ(radial) = 2 mm and a maximum temporal resolution of Δt ≃ 2 μs (470 kHz) are possible for the first time. The diagnostic setup at TEXTOR is presented. The newly developed injection system and its theoretical bases are discussed. The applicability of the stationary collisional-radiative model as basis of the line-ratio technique is shown. Finally, an example of a fluctuation analysis demonstrating the unique high temporal and spatial resolution capabilities of this new diagnostic is presented.
在TEXTOR(面向技术研究的托卡马克实验装置)上设计、建造并优化了一种基于线比技术的超声速氦束诊断装置,用于在等离子体边缘(r/a > 0.9)进行高分辨率电子密度和温度测量。基于坎帕尔格分离器-喷嘴概念开发并优化了超声速注入系统,以便同时提供n(0) = 1.5 × 10(18) m(-3)的高中性氦束密度和±1°的低束发散度,实现了Δ(极向) = 9 mm的极向分辨率。该装置采用了一种新开发的无死体积压电阀,可在高达2 T的高磁场环境中运行,最大重复频率为80 Hz。以2 Hz的重复频率(占空比1/3)进行120 ms的气体注入。结合由三个32通道光电倍增管(PMT)组成的高灵敏度检测系统,首次能够以Δ(径向) = 2 mm的径向分辨率和Δt ≃ 2 μs(470 kHz)的最大时间分辨率测量边缘电子温度和密度。介绍了TEXTOR上的诊断装置。讨论了新开发的注入系统及其理论基础。展示了作为线比技术基础的稳态碰撞辐射模型的适用性。最后,给出了一个涨落分析示例,展示了这种新诊断方法独特的高时空分辨率能力。