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在韩国超导托卡马克先进研究装置(KSTAR)上开发超快电荷交换光谱系统。

Development of an ultrafast charge exchange spectroscopy system on the KSTAR tokamak.

作者信息

Jang Jae Young, Ko Won-Ha, Li Yingying, von Hellermann Manfred, Shi Yuejiang, Hwang Y S

机构信息

Department of Energy Systems Engineering, Seoul National University, Seoul 08826, Republic of Korea.

Korea Institute of Fusion Energy, Daejeon 34133, Republic of Korea.

出版信息

Rev Sci Instrum. 2021 May 1;92(5):053525. doi: 10.1063/5.0043824.

Abstract

An ultrafast charge exchange spectroscopy (UFCES) system has been designed for measuring fluctuations in ion temperature and toroidal rotation velocity. The UFCES on the KSTAR tokamak is a powerful tool for investigating plasma instabilities and long-wavelength turbulence related to ion temperature gradient and flow. The UFCES system is designed to measure the C VI line (n = 8 → 7, λ = 529.05 nm) from the charge exchange reaction between a deuterium-heating neutral beam and the intrinsic carbon impurity in KSTAR. The ion temperature and toroidal rotation velocity at two radial positions will be observed simultaneously with UFCES. The key difference between the UFCES system and conventional charge exchange spectrometers is the application of high-throughput collection optics, a high-efficiency transmission grating combined with prisms, and a high-speed detector. We use a comprehensive spectrum simulation code with input parameters of KSTAR's plasmas and a neutral beam injection system to estimate the performance of the designed UFCES system. The results simulated with the code show that the diagnostic achieves a turbulence-relevant time resolution of 10 µs with a high enough signal-to-noise ratio. Furthermore, a preliminary test is performed using a complementary metal-oxide semiconductor camera and Ne spectral lamp to confirm the linear dispersion and curvature radius.

摘要

设计了一种用于测量离子温度和环向旋转速度波动的超快电荷交换光谱(UFCES)系统。韩国超导托卡马克先进研究装置(KSTAR)上的UFCES是研究与离子温度梯度和流相关的等离子体不稳定性和长波长湍流的有力工具。UFCES系统旨在测量氘加热中性束与KSTAR中的固有碳杂质之间电荷交换反应产生的C VI线(n = 8 → 7,λ = 529.05 nm)。将通过UFCES同时观测两个径向位置处的离子温度和环向旋转速度。UFCES系统与传统电荷交换光谱仪的关键区别在于采用了高通量收集光学器件、结合棱镜的高效透射光栅以及高速探测器。我们使用具有KSTAR等离子体和中性束注入系统输入参数的综合光谱模拟代码来估计所设计的UFCES系统的性能。用该代码模拟的结果表明,该诊断系统以足够高的信噪比实现了10 µs的与湍流相关的时间分辨率。此外,使用互补金属氧化物半导体相机和氖光谱灯进行了初步测试,以确认线性色散和曲率半径。

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