Nishiura Masaki, Adachi Shun, Tanaka Kenji, Kubo Shin, Kenmochi Naoki, Shimozuma Takashi, Yanai Ryoma, Saito Teruo, Nuga Hideo, Seki Ryosuke
National Institute for Fusion Science, 322-6 Oroshi-cho, Toki 509-5292, Gifu, Japan.
Interdisciplinary Graduate School of Engineering Science, Department of Advanced Energy Engineering, Kyushu University, Kasuga, Fukuoka 816-8580, Japan.
Rev Sci Instrum. 2022 May 1;93(5):053501. doi: 10.1063/5.0079296.
A collective Thomson scattering (CTS) diagnostic with a ±3 GHz band around a 77 GHz gyrotron probe beam was developed to measure the velocity distribution of bulk and fast ions in high-temperature plasmas. We propose a new in situ calibration method for a CTS diagnostic system combined with a raytracing code. The method is applied in two situations for electron cyclotron emission in plasmas and in a CTS diagnostic with a modulated probe beam. Experimental results highlight the importance of refraction correction in probe and receive beams. The CTS spectrum is measured with the in situ calibrated CTS receiver and responds to fast ions originating from a tangential neutral beam with an energy of 170 keV and from a perpendicular beam with an energy of 60 keV, both in the large helical device. From a velocity space analysis model, the results elucidate the measured anisotropic CTS spectrum caused by fast ions. The calibration methods and analyses demonstrated here are essential for CTS, millimeter-wave diagnostics, and electron cyclotron heating required under fusion reactor conditions.
开发了一种集体汤姆逊散射(CTS)诊断方法,该方法围绕77 GHz回旋管探测光束具有±3 GHz频段,用于测量高温等离子体中体离子和快离子的速度分布。我们提出了一种结合光线追踪代码的CTS诊断系统的新原位校准方法。该方法应用于等离子体中电子回旋辐射以及具有调制探测光束的CTS诊断的两种情况。实验结果突出了探测光束和接收光束中折射校正的重要性。使用原位校准的CTS接收器测量CTS光谱,该光谱响应来自大型螺旋装置中能量为170 keV的切向中性束和能量为60 keV的垂直束产生的快离子。根据速度空间分析模型,结果阐明了由快离子引起的测量到的各向异性CTS光谱。这里展示的校准方法和分析对于聚变反应堆条件下所需的CTS、毫米波诊断和电子回旋加热至关重要。