Recent progress on JET towards the ITER reference mode of operation at high density

被引:51
作者
Ongena, J
Suttrop, W
Bécoulet, M
Cordey, G
Dumortier, P
Eich, T
Ingesson, LC
Jachmich, S
Lang, P
Loarte, A
Lomas, P
Maddison, GP
Messiaen, A
Nave, MFF
Rapp, J
Saibene, G
Sartori, R
Sauter, O
Strachan, JD
Unterberg, B
Valovic, M
Alper, B
Andrew, P
Baranov, Y
Brzozowski, J
Bucalossi, J
Brix, M
Budny, R
Charlet, M
Coffey, I
De Baar, M
De Vries, P
Gowers, C
Hawkes, N
von Hellermann, M
Hillis, DL
Hogan, J
Jackson, GL
Joffrin, E
Jupen, C
Kallenbach, A
Koslowski, HR
Lawson, KD
Mantsinen, M
Matthews, G
Monier-Garbet, P
McDonald, D
Milani, F
Murakami, M
Murari, A
机构
[1] EURATOM Assoc Belgian State, KMS, ERM, LPP, B-1000 Brussels, Belgium
[2] EURATOM, Max Planck Inst Plasmaphys, D-85748 Garching, Germany
[3] CEA Cadarache, F-13108 St Paul Les Durance, France
[4] UKAEA Euratom Fus Assoc, Culham, England
[5] Forschungszentrum Julich, Inst Plasmaphys, EURATOM Assoc, D-52425 Julich, Germany
[6] EURATOM, FOM, Inst Plasmafys, NL-3430 BE Nieuwegein, Netherlands
[7] EFDA, Close Support Unit, D-85748 Garching, Germany
[8] EURATOM, IST, Ctr Fusao Nucl, P-1096 Lisbon, Portugal
[9] Ecole Polytech Fed Lausanne, Assoc Euratom Confederat Suisse, Ctr Rech Phys Plasmas, CH-1007 Lausanne, Switzerland
[10] Chalmers, EURATOM Assoc, NFR, S-41296 Gothenburg, Sweden
[11] Princeton Univ, Princeton Plasma Phys Lab, Princeton, NJ 08543 USA
[12] Oak Ridge Natl Lab, Oak Ridge, TN 37831 USA
[13] Natl Fus Facil, DIIID, San Diego, CA 92186 USA
[14] EURATOM, ENEA Fusione, Ctr Ric Frascati, I-00044 Frascati, Rome, Italy
[15] EURATOM, Enea Fusione, Consorzio RFX, I-35127 Padua, Italy
[16] Free Univ Brussels, EURATOM Assoc, Belgian Stat Phys Theor & Math, Unite Phys Plasmas, B-1050 Brussels, Belgium
关键词
D O I
10.1088/0741-3335/43/12A/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
Recent progress towards obtaining high density and high confinement in JET as required for the ITER reference scenario at Q = 10 is summarized. Plasmas with simultaneous confinement H-98(y.2) = 1 and densities up to n/n(Gw) similar to 1 are now routinely obtained. This has been possible (i) by using plasmas at high (delta similar to 0.5) and medium (delta similar to 0.3-0.4) triangularity with sufficient heating power to maintain Type I ELMs, (ii) with impurity seeded plasmas at high (delta similar to 0.5) and low (delta less than or equal to 0.2) triangularity, (iii) with an optimized pellet injection sequence, maintaining the energy confinement and raising the density, and (iv) by carefully tuning the gas puff rate leading to plasmas with peaked density profiles and good confinement at long time scales. These high performance discharges exhibit Type I ELMs, with a new and more favourable behaviour observed at high densities, requiring further studies. Techniques for a possible mitigation of these ELMs are discussed, and first promising results are obtained with impurity seeding in discharges at high triangularity. Scaling studies using the new data of this year show a strong dependence of confinement on upper triangularity, density and proximity to the Greenwald limit. Observed MHD instabilities and methods to avoid these in high density and high confinement plasmas are discussed.
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页码:A11 / A30
页数:20
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