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国际热核聚变实验堆集体汤姆逊散射——准备诊断聚变产生的阿尔法粒子(特邀报告)

ITER collective Thomson scattering-Preparing to diagnose fusion-born alpha particles (invited).

作者信息

Korsholm S B, Chambon A, Gonçalves B, Infante V, Jensen T, Jessen M, Klinkby E B, Larsen A W, Luis R, Nietiadi Y, Nonbøl E, Rasmussen J, Rechena D, Salewski M, Taormina A, Vale A, Varela P, Sanchez L, Ballester R M, Udintsev V, Liu Y

机构信息

Department of Physics, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

Instituto de Plasmas e Fusão Nuclear, Instituto Superior Técnico, Univ. Lisboa, 1049001 Lisbon, Portugal.

出版信息

Rev Sci Instrum. 2022 Oct 1;93(10):103539. doi: 10.1063/5.0101867.

Abstract

The ITER Collective Thomson scattering (CTS) diagnostic will measure the dynamics of fusion-born alpha particles in the burning ITER plasma by scattering a 1 MW 60 GHz gyrotron beam off fast-ion induced fluctuations in the plasma. The diagnostic will have seven measurement volumes across the ITER cross section and will resolve the alpha particle energies in the range from 300 keV to 3.5 MeV; importantly, the CTS diagnostic is the only diagnostic capable of measuring confined alpha particles for energies below ∼1.7 MeV and will also be sensitive to the other fast-ion populations. The temporal resolution is 100 ms, allowing the capture of dynamics on that timescale, and the typical spatial resolution is 10-50 cm. The development and design of the in-vessel and primary parts of the CTS diagnostic has been completed. This marks the beginning of a new phase of preparation to maximize the scientific benefit of the diagnostic, e.g., by investigating the capability to contribute to the determination of the fuel-ion ratio and the bulk ion temperature as well as integrating data analysis with other fast-ion and bulk-ion diagnostics.

摘要

国际热核聚变实验堆(ITER)的集体汤姆逊散射(CTS)诊断系统将通过用1兆瓦60吉赫兹回旋管束流散射等离子体中快离子引起的涨落,来测量ITER燃烧等离子体中聚变产生的α粒子的动力学。该诊断系统在ITER横截面将有七个测量体积,并能分辨300千电子伏至3.5兆电子伏范围内的α粒子能量;重要的是,CTS诊断系统是唯一能够测量能量低于约1.7兆电子伏的受限α粒子的诊断系统,并且对其他快离子群体也很敏感。时间分辨率为100毫秒,能够捕捉该时间尺度上的动力学,典型空间分辨率为10 - 50厘米。CTS诊断系统的舱内和主要部件的研制与设计已经完成。这标志着一个新阶段的开始,即通过研究其对确定燃料离子比和体离子温度的贡献能力以及将数据分析与其他快离子和体离子诊断相结合等方式,来最大限度地提高该诊断系统的科学效益。

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