Concept of a Diagnostic System for Measuring the Electron Temperature Profile of Plasma from the Intensity of Electron Cyclotron Emission for the TRT Facility

IF 0.9 4区 物理与天体物理 Q4 PHYSICS, FLUIDS & PLASMAS
N. A. Solovev, D. E. Dias Mikhaylova
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Abstract

The paper presents a concept of the ECE diagnostic for the TRT facility and estimates the achievable measurement parameters in the baseline scenario. The target spectral region for the diagnostic corresponds to the first harmonic of the ECR frequency in ordinary polarization (O1) and the second harmonic in extraordinary polarization (X2). It is proposed to carry out measurements from the low-field side along two lines of sight: radial and toroidally oblique. The accessible spectral region in terms of the normalized radial coordinate is approximately estimated as –0.9 to 0.9 and –0.1 to 0.9. It is proposed to shape the input wave beam by means of a quasi-optical focusing system that provides a transverse size of the resolved region of approximately 3–5 cm for O1 and 1.2–3 cm for X2. For measurements, it is proposed to use Fourier transform spectrometers with a time resolution of about 10 ms and multichannel heterodyne receivers with a time resolution of about 1 μs. The minimum radial size of the resolved region is estimated to be 3–5 cm for O1 and 2–4 cm for X2, depending on the coordinate.

Abstract Image

Abstract Image

从电子回旋加速器发射强度测量等离子体电子温度分布的诊断系统概念,用于 TRT 设施
摘要 本文提出了 TRT 设施的欧洲经委会诊断概念,并估算了基线方案中可实现的测量参数。诊断的目标光谱区域对应于普通极化(O1)下的 ECR 频率的第一次谐波和非常极化(X2)下的第二次谐波。建议从低场侧沿着两条视线进行测量:径向和环向斜视。按归一化径向坐标估算,可进入的光谱区域大致为-0.9 至 0.9 和-0.1 至 0.9。建议通过准光学聚焦系统对输入波束进行整形,使 O1 分辨区域的横向尺寸约为 3-5 厘米,X2 分辨区域的横向尺寸约为 1.2-3 厘米。在测量时,建议使用时间分辨率约为 10 毫秒的傅立叶变换光谱仪和时间分辨率约为 1 微秒的多通道外差接收器。根据坐标的不同,O1 分辨区域的最小径向尺寸估计为 3-5 厘米,X2 分辨区域的最小径向尺寸估计为 2-4 厘米。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plasma Physics Reports
Plasma Physics Reports 物理-物理:流体与等离子体
CiteScore
1.90
自引率
36.40%
发文量
104
审稿时长
4-8 weeks
期刊介绍: Plasma Physics Reports is a peer reviewed journal devoted to plasma physics. The journal covers the following topics: high-temperature plasma physics related to the problem of controlled nuclear fusion based on magnetic and inertial confinement; physics of cosmic plasma, including magnetosphere plasma, sun and stellar plasma, etc.; gas discharge plasma and plasma generated by laser and particle beams. The journal also publishes papers on such related topics as plasma electronics, generation of radiation in plasma, and plasma diagnostics. As well as other original communications, the journal publishes topical reviews and conference proceedings.
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