Scaling of the pedestal density in type-I ELMy H-mode discharges and the impact of upper and lower triangularity in JET and ASDEX upgrade

被引:16
作者
Kallenbach, A [1 ]
Beurskens, MNA
Korotkov, A
Lomas, P
Suttrop, W
Charlet, M
McDonald, DC
Milani, F
Rapp, J
Stamp, M
机构
[1] EURATOM, MPI Plasmaphys, D-85748 Garching, Germany
[2] EURATOM, FOM Rijnhuizen, Nieuwegein, Netherlands
[3] EURATOM, UKAEA Fus Assoc, Culham, England
[4] EURATOM, IPP FZ, Julich, Germany
关键词
D O I
10.1088/0029-5515/42/10/302
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
Experiments have been performed to disentangle the individual role of tipper and lower triangularity on density buildup of lower single null, type-I ELMy H-mode discharges in JET. Comparison with corresponding data from ASDEX Upgrade allowed us to determine a dimensionless representation of the relation between the main chamber recycling and core density and to widen the triangularity variation in the data base. To incorporate the recycling flux density F in a dimensionless form, an effective scrape-off layer density n(e,SOL) proportional to Gamma(0.5) is introduced allowing us to,,SOL parametrize and scale the core density by the density rise factor (n) over bar (e)/n(e,SOL). The scaling uses edge-specific definitions of normalized Larmor radius, collisionality and beta. Rewritten in dimensional form, a behaviour is found which is very similar to energy confinement scalings for the ELM-averaged conditions considered here: the density rise factor exhibits an almost linear dependence on plasma current, a weak negative toroidal field dependence as well as power degradation. While a pronounced positive dependence of density buildup on the upper triangularity is observed, no significant correlation with the lower triangularity is found. In particular the dependences on plasma current and upper triangularity emphasize the importance of transport physics for the density buildup.
引用
收藏
页码:1184 / 1192
页数:9
相关论文
共 42 条
[21]  
KADOMTSEV BB, 1975, SOV J PLASMA PHYS, V1, P295
[22]   Closed divertor operation in ASDEX Upgrade and JET [J].
Kallenbach, A ;
Coster, D ;
Fuchs, JC ;
Guo, HY ;
Haas, G ;
Herrmann, A ;
Horton, LD ;
Ingesson, LC ;
Maggi, CF ;
Matthews, GF ;
Monk, RD ;
Neuhauser, J ;
Ryter, F ;
Schweinzer, J ;
Stober, J ;
Suttrop, W .
PLASMA PHYSICS AND CONTROLLED FUSION, 1999, 41 :B177-B189
[23]  
KOROTKOV AA, 2000, 27 C CONTR FUS PLASM
[24]   On scrape off layer plasma transport [J].
Krasheninnikov, SI .
PHYSICS LETTERS A, 2001, 283 (5-6) :368-370
[25]   Measurement and scaling of the radial correlation lengths of turbulence at the plasma edge of ASDEX Upgrade [J].
Kurzan, B ;
Hempel, SD ;
Holzhauer, E ;
Scott, B ;
Serra, F ;
Suttrop, W ;
Zeiler, A .
PLASMA PHYSICS AND CONTROLLED FUSION, 2000, 42 (03) :237-253
[26]   Cross-field plasma transport and main-chamber recycling in diverted plasmas on Alcator C-Mod [J].
LaBombard, B ;
Umansky, MV ;
Boivin, RL ;
Goetz, JA ;
Hughes, J ;
Lipschultz, B ;
Mossessian, D ;
Pitcher, CS ;
Terry, JL .
NUCLEAR FUSION, 2000, 40 (12) :2041-2060
[27]  
Lackner K., 1994, Comments on Plasma Physics and Controlled Fusion, V15, P359
[28]  
MAHDAVI MA, 2001, P 18 IAEA FUS EN C S
[29]  
MULLER HW, 2001, 28 EPS C CONTR FUS P
[30]  
Neuhauser J, 2002, PLASMA PHYS CONTR F, V44, P855, DOI 10.1088/0741-3335/44/6/316