用于 HL-2A 托卡马克电荷交换重组光谱诊断系统的三波段串联光栅高光谱分辨率光谱仪

Liang Liu, Deliang Yu, Qian Ma, Xiaofei He, Maarten De Bock, M. von Hellermann, Michael Walsh, Wenjin Chen, Xiaoxue He, Yanling Wei, Neng Zhang, Huiling Wei
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摘要

电荷交换(CX)重组光谱是一种监测离子温度和等离子体旋转的强大工具,具有良好的时间和空间分辨率。为在 HL-2A 托卡马克上进行电荷交换重组光谱测量,开发了一种结构紧凑、设计新颖的高通量三波段高光谱分辨率光谱仪。通过在实验中对每根光纤的光谱进行垂直分档,可同时测量 He II(468.57 nm)、C VI(529.1 nm)和 Dα(656.1 nm,伴有光束发射光谱),采集频率高达 400 Hz。初步结果表明,该系统不仅能提供离子温度和旋转速度的径向剖面图,还能提供碳浓度的径向剖面图。对于氦的情况,离子温度和旋转速度的测量很简单,但与观测到的 CX 强度相关的表观浓度显然过高。需要对活跃的 He II CX 特征(包括羽流贡献)进行建模,以提取真实的氦浓度。该光谱仪可以成为国际热核聚变实验堆电荷交换重组光谱诊断的原型,本文介绍的先导实验证明了在联合测量本地光束发射和电荷交换重组光谱的基础上测量杂质浓度的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The tri-band high spectral resolution spectrometer with gratings in tandem for the charge-exchange recombination spectroscopy diagnostic system on HL-2A tokamak
Charge-exchange (CX) recombination spectroscopy is a powerful tool monitoring ion temperature and plasma rotation with good temporal and spatial resolutions. A compact, new design for a high-throughput, tri-band high spectral resolution spectrometer has been developed for the charge-exchange recombination spectroscopy measurement on the HL-2A tokamak. The simultaneous measurements of He II (468.57 nm), C VI (529.1 nm), and Dα (656.1 nm accompanied by beam emission spectra) with an acquisition frequency up to 400 Hz are achieved by vertically binning the spectrum from each fiber in experiments. Initial results indicate that the system can provide radial profiles not only of ion temperature and rotation velocity, but also concentration of carbon. For the case of helium, the measurements for the ion temperature and rotation velocity are straightforward but the apparent concentration associated with the observed CX intensity is obviously too high. Modeling of the active He II CX feature including plume contributions needs to be carried out to extract the true helium concentration. The spectrometer could become a prototype for the ITER charge-exchange recombination spectroscopy diagnostic and the pilot experiments, as presented here, demonstrate the possibility of impurity concentrations measurements based on the combined measurement of local beam emission and charge-exchange recombination spectroscopy spectra.
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