Dependence of particle transport on heating profiles in ASDEX upgrade

被引:39
作者
Stober, J [1 ]
Dux, R
Gruber, O
Horton, L
Lang, P
Lorenzini, R
Maggi, C
Meo, F
Neu, R
Noterdaeme, JM
Peeters, A
Pereverzev, G
Ryter, F
Sips, ACC
Stäbler, A
Zohm, H
机构
[1] EURATOM, MPI Plasmaphys, D-85748 Garching, Germany
[2] EURATOM, ENEA, Consorzio RFX, I-35127 Padua, Italy
关键词
D O I
10.1088/0029-5515/43/10/030
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
The behaviour of the density profiles in ASDEX Upgrade can be described well with the assumption D proportional to chi and a pinch of the order of the neoclassical Ware pinch. The latter is estimated from slowly equilibrating density profiles. The assumption D proportional to chi has been succesfully tested by varying the heat deposition profile, making use of on-/off-axis ICRH and ECRH: due to the generally observed self-similarity of the temperature profile, such variations in the heat flux profile have a strong effect on the chi-profile and on the D-profile if the above assumption is correct. The corresponding variations in the density profiles have indeed been observed. The model is also capable of describing the decay of the density profile after injecting a train of pellets. The anomalous transport of impurities is also increased with central heating, and the corresponding flattening of the density profile leads to a significant reduction of the neoclassical impurity pinch. Central ICR or ECR heating are therefore now routinely used to control density peaking and its negative effect on the stability of neoclassical tearing modes as well as to control the impurity transport in ASDEX Upgrade.
引用
收藏
页码:1265 / 1271
页数:7
相关论文
共 27 条
  • [1] Guiding center particle simulation of wide-orbit neoclassical transport
    Bergmann, A
    Peeters, AG
    Pinches, SD
    [J]. PHYSICS OF PLASMAS, 2001, 8 (12) : 5192 - 5198
  • [2] Numerical simulation of ion cyclotron waves in tokamak plasmas
    Brambilla, M
    [J]. PLASMA PHYSICS AND CONTROLLED FUSION, 1999, 41 (01) : 1 - 34
  • [3] EFFECT OF IMPURITY PARTICLES ON THE FINITE-ASPECT RATIO NEOCLASSICAL ION THERMAL-CONDUCTIVITY IN A TOKAMAK
    CHANG, CS
    HINTON, FL
    [J]. PHYSICS OF FLUIDS, 1986, 29 (10) : 3314 - 3316
  • [4] DOYLE EJ, 2002, P 19 IAEA C FUS EN L
  • [5] Influence of the heating profile on impurity transport in ASDEX Upgrade
    Dux, R
    Neu, R
    Peeters, AG
    Pereverzev, G
    Mück, A
    Ryter, F
    Stober, J
    [J]. PLASMA PHYSICS AND CONTROLLED FUSION, 2003, 45 (09) : 1815 - 1825
  • [6] Accumulation of impurities in advanced scenarios
    Dux, R
    Giroud, C
    Neu, R
    Peeters, AG
    Stober, J
    Zastrow, KD
    [J]. JOURNAL OF NUCLEAR MATERIALS, 2003, 313 : 1150 - 1155
  • [7] Kadomtsev B. B., 1975, Fizika Plazmy, V1, P710
  • [8] Refuelling performance improvement by high speed pellet launch from the magnetic high field side
    Lang, PT
    Lorenz, A
    Mertens, V
    Fuchs, JC
    Gafert, J
    Gehre, O
    Gruber, O
    Haas, G
    Kaufmann, M
    Kurzan, B
    Maraschek, M
    Müller, HW
    Murmann, HD
    Neuhauser, J
    Reich, M
    Schneider, W
    Vergamota, S
    [J]. NUCLEAR FUSION, 2001, 41 (08) : 1107 - 1112
  • [9] LORENZINI R, 2002, P 29 EPS C CONTR F B, P26
  • [10] High performance H mode plasmas at densities above the Greenwald limit
    Mahdavi, MA
    Osborne, TH
    Leonard, AW
    Chu, MS
    Doyle, EJ
    Fenstermacher, ME
    McKee, GR
    Staebler, GM
    Petrie, TW
    Wade, MR
    Allen, SL
    Boedo, JA
    Brooks, NH
    Colchin, RJ
    Evans, TE
    Greenfield, CM
    Porter, GD
    Isler, RC
    La Haye, RJ
    Lasnier, CJ
    Maingi, R
    Moyer, RA
    Schaffer, MJ
    Stangeby, PG
    Watkins, JG
    West, WP
    Whyte, DG
    Wolf, NS
    [J]. NUCLEAR FUSION, 2002, 42 (01) : 52 - 58