Vacuum ultraviolet spectroscopy at TEXTOR

被引:10
作者
Biel, W [1 ]
机构
[1] Forschungszentrum Julich, EURATOM Assoc, Inst Plasmaphys, D-52425 Julich, Germany
关键词
VUV spectroscopy; plasma impurities; impurity transport;
D O I
10.13182/FST05-A703
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Spectroscopy infusion experiments is an important tool to identify impurities in the plasma and to analyze their properties based on the measurement of their characteristic line radiation. For the temperature range typical infusion plasmas, the dominant part of each impurity in the plasma is highly ionized, and its most intense spectral lines radiate in the vacuum ultraviolet (VUV) wavelength range (10 to 200 nm). The VUV overview spectrometers installed at TEXTOR working at moderate resolution allow one to identify intrinsic plasma impurities such as B (Z = 5), C (Z = 6), Fe (Z = 26), and Cu (Z = 29) as well as seeded impurities such as Ne (Z = 10) and Ar (Z = 18) and to derive information on their relative densities in the plasma. Optimizing these spectrometers for high time resolution provides a tool to analyze transient phenomena like impurity transport processes. In combination with impurity transport modeling and atomic data, the radial distribution of the radial diffusion coefficient is determined from the experimental data. For the case of ohmic discharges, the effective radial diffusion coefficient is found to be anomalously enhanced by more than one order of magnitude as compared to neoclassical predictions.
引用
收藏
页码:246 / 252
页数:7
相关论文
共 27 条
[11]   Overview of erosion mechanisms, impurity transport, and deposition in TEXTOR and related modeling [J].
Kirschner, A ;
Philipps, V ;
Rubel, M ;
Mertens, P .
FUSION SCIENCE AND TECHNOLOGY, 2005, 47 (02) :146-160
[12]   DETERMINATION OF IMPURITY TRANSPORT-COEFFICIENTS BY HARMONIC-ANALYSIS [J].
KRIEGER, K ;
FUSSMANN, G .
NUCLEAR FUSION, 1990, 30 (11) :2392-2396
[13]   Laser blow-off injected impurity transport in L mode Tore Supra plasmas [J].
Mattioli, M ;
De Michelis, C ;
Pecquet, AL .
NUCLEAR FUSION, 1998, 38 (11) :1629-1635
[14]   Impurity behaviour in the ASDEX Upgrade divertor tokamak with large area tungsten walls [J].
Neu, R ;
Dux, R ;
Geier, A ;
Kallenbach, A ;
Pugno, R ;
Rohde, V ;
Bolshukhin, D ;
Fuchs, JC ;
Gehre, O ;
Gruber, O ;
Hobirk, J ;
Kaufmann, M ;
Krieger, K ;
Laux, M ;
Maggi, C ;
Murmann, H ;
Neuhauser, J ;
Ryter, F ;
Sips, ACC ;
Stäbler, A ;
Stober, J ;
Suttrop, W ;
Zohm, H .
PLASMA PHYSICS AND CONTROLLED FUSION, 2002, 44 (06) :811-826
[15]   Confinement transitions with radiation cooling in TEXTOR-94 [J].
Ongena, J ;
Messiaen, AM ;
Samm, U ;
Unterberg, B ;
Finken, KH ;
Vandenplas, PE ;
VanOost, G ;
VanWassenhove, G ;
Winter, J ;
Bonheure, G ;
Dumortier, P ;
Durodie, F ;
Euringer, H ;
Fuchs, G ;
Hoenen, F ;
Koch, R ;
Konen, L ;
Koslowski, HR ;
KramerFlecken, A ;
Rapp, J ;
Schoon, N ;
Telesca, G ;
Uhlemann, R ;
Vervier, M ;
Waidmann, G ;
Weynants, RR .
PLASMA PHYSICS AND CONTROLLED FUSION, 1996, 38 (03) :279-288
[16]   PROGRESS IN TOKAMAK RESEARCH AT MIT [J].
PARKER, RR ;
GREENWALD, M ;
LUCKHARDT, SC ;
MARMAR, ES ;
PORKOLAB, M ;
WOLFE, SM .
NUCLEAR FUSION, 1985, 25 (09) :1127-1136
[17]   Wall conditioning on TEXTOR [J].
Philipps, V .
FUSION SCIENCE AND TECHNOLOGY, 2005, 47 (02) :119-125
[18]   ELM mitigation by nitrogen seeding in the JET gas box divertor [J].
Rapp, J ;
Eich, T ;
von Hellermann, M ;
Herrmann, A ;
Ingesson, LC ;
Jachmich, S ;
Matthews, GF ;
Philipps, V ;
Saibene, G .
PLASMA PHYSICS AND CONTROLLED FUSION, 2002, 44 (06) :639-652
[19]  
SAMM U, 1993, PLASMA PHYS CONTRO B, V35, P167
[20]  
SAMSON JAR, 1967, TECHNIQUES VACUUM UL, P69