Lithium erosion experiments and modelling under quiescent plasma conditions in DIII-D

被引:52
作者
Allain, JP [1 ]
Whyte, DG
Brooks, JN
机构
[1] Argonne Natl Lab, Argonne, IL 60439 USA
[2] Univ Wisconsin, Madison, WI 53706 USA
关键词
D O I
10.1088/0029-5515/44/5/009
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Lithium-sputtering erosion and transport has been measured in the outer divertor of the DIII-D tokamak. The Divertor Materials Evaluation System (DiMES) mechanism places a 2.5 cm lithium spot as a plasma-facing surface in the divertor. Plasma diagnostics and atomic lithium visible spectroscopy are used to measure the lithium erosion yield near the outer strikepoint (OSP) with swept-plasma parameters of electron temperature 5-25 eV and electron density (0.03-1.80) x 10(19) m(-3). Solid-phase lithium physical sputtering is measured to be less than 10% (Li/D+). The yield increases with incident energy. Physical sputtering models confirm measurements of sputtered energy and spatial distributions showing skewed angular distributions when the sample is exposed near the OSP and isotropic angular distributions when the sample is exposed to the private flux region. REDEP/WBC modelling of near-surface impurity transport agrees well with experimental measurements showing sputtered lithium neutral atoms effectively ionized about a centimetre away from the Li-DiMES probe surface. A reduction in lithium physical sputtering by a factor of 4-5 is measured when the lithium surface forms an oxide, consistent with the physical sputtering behaviour of most metal-oxides. Although of less significance than lithium atom transport, there is a modelling/data discrepancy regarding lithium ion transport with, e.g. the data showing more asymmetric ion transport than predicted.
引用
收藏
页码:655 / 664
页数:10
相关论文
共 34 条
[1]   On the exploration of innovative concepts for fusion chamber technology [J].
Abdou, MA ;
Ying, A ;
Morley, N ;
Gulec, K ;
Smolentsev, S ;
Kotschenreuther, M ;
Malang, S ;
Zinkle, S ;
Rognlien, T ;
Fogarty, P ;
Nelson, B ;
Nygren, R ;
McCarthy, K ;
Youssef, MZ ;
Ghoniem, N ;
Sze, D ;
Wong, C ;
Sawan, M ;
Khater, H ;
Woolley, R ;
Mattas, R ;
Moir, R ;
Sharafat, S ;
Brooks, J ;
Hassanein, A ;
Petti, D ;
Tillack, M ;
Ulrickson, M ;
Uchimoto, T .
FUSION ENGINEERING AND DESIGN, 2001, 54 (02) :181-247
[2]  
Allain JP, 2002, NATO SCI SER II MATH, V54, P73
[3]   Measurements and modelling of solid phase lithium sputtering [J].
Allain, JP ;
Ruzic, DN .
NUCLEAR FUSION, 2002, 42 (02) :202-210
[4]   Measurements and modeling of D, He and Li sputtering of liquid lithium [J].
Allain, JP ;
Ruzic, DN ;
Hendricks, MR .
JOURNAL OF NUCLEAR MATERIALS, 2001, 290 :180-184
[5]  
ALLAIN JP, 2003, J NUCL MATER, V313, P645
[6]  
ALLAIN JP, 2001, THESIS U ILLINOIS UR
[7]   A hydrocarbon reaction model for low temperature hydrogen plasmas and an application to the Joint European Torus [J].
Alman, DA ;
Ruzic, DN ;
Brooks, JN .
PHYSICS OF PLASMAS, 2000, 7 (05) :1421-1432
[8]   Plasma interaction with liquid lithium: Measurements of retention and erosion [J].
Baldwin, MJ ;
Doerner, RP ;
Luckhardt, SC ;
Seraydarian, R ;
Whyte, DG ;
Conn, RW .
FUSION ENGINEERING AND DESIGN, 2002, 61-62 :231-236
[9]   Deuterium retention in liquid lithium [J].
Baldwin, MJ ;
Doerner, RP ;
Luckhardt, SC ;
Conn, RW .
NUCLEAR FUSION, 2002, 42 (11) :1318-1323
[10]   SPUTTERING STUDIES WITH THE MONTE-CARLO PROGRAM TRIM.SP [J].
BIERSACK, JP ;
ECKSTEIN, W .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 1984, 34 (02) :73-94