Overview of physics basis for ITER

被引:58
|
作者
Mukhovatov, V [1 ]
Shimada, M
Chudnovskiy, AN
Costley, AE
Gribov, Y
Federici, G
Kardaun, O
Kukushkin, AS
Polevoi, A
Pustovitov, VD
Shimomura, Y
Sugie, T
Sugihara, M
Vayakis, G
机构
[1] Int Team, ITER Naka Joint Work Site, Naka, Ibaraki 3110193, Japan
[2] Nucl Fus Inst, RRC Kurchatov Inst, Moscow, Russia
[3] Int Team, ITER Garching Joint Work Site, Garching, Germany
[4] Associat Euratom, IPP, MPI Plamaphys, Garching, Germany
关键词
D O I
10.1088/0741-3335/45/12A/016
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
ITER will be the first magnetic confinement device with burning DT plasma and fusion power of about 0.5 GW. Parameters of ITER plasma have been predicted using methodologies summarized in the ITER Physics Basis (1999 Nucl. Fusion 39 2175). During the past few years, new results have been obtained that substantiate confidence in achieving Q greater than or equal to 10 in ITER with inductive H-mode operation. These include achievement of a good H-mode confinement near the Greenwald density at high triangularity of the plasma cross section; improvements in theory-based confinement projections for the core plasma, even though further studies are needed for understanding the transport near the plasma edge; improvement in helium ash removal due to the elastic collisions of He atoms with D/T ions in the divertor predicted by modelling; demonstration of feedback control of neoclassical tearing modes and resultant improvement in the achievable beta-values; better understanding of edge localized mode (ELM) physics and development of ELM mitigation techniques; and demonstration of mitigation of plasma disruptions. ITER will have a flexibility to operate also in steady-state and intermediate (hybrid) regimes. The 'advanced tokamak' regimes with weak or negative central magnetic shear and internal transport barriers are considered as potential scenarios for steady-state operation. The paper concentrates on inductively driven plasma performance and discusses requirements for steady-state operation in ITER.
引用
收藏
页码:A235 / A252
页数:18
相关论文
共 50 条
  • [1] Overview of JET results in support of the ITER physics basis
    Adams, JM
    Ageladarakis, P
    Alper, B
    Altmann, H
    Arshad, S
    Bainbridge, N
    Balet, B
    Baranov, Y
    Barker, P
    Barnsley, R
    Bartlett, DV
    Begue, ML
    Bell, AC
    Bertalot, L
    Bertolini, E
    Beurskens, M
    Bevil, C
    Bickley, AJ
    Bigi, M
    Bird, S
    Blackler, K
    Bond, D
    Borba, D
    Brandon, M
    Brelen, H
    Brennan, P
    Brewerton, WJ
    Brix, M
    Browne, ML
    Budd, T
    Budny, R
    Butcher, P
    Buttery, R
    Caldwell-Nichols, C
    Campling, D
    Card, P
    Challis, CD
    Chankin, AV
    Charlet, M
    Chen, H
    Chiron, D
    Christiansen, J
    Ciric, D
    Clement, S
    Coad, JP
    Coffey, I
    Conroy, S
    Conway, G
    Cooper, S
    Cordey, JG
    [J]. NUCLEAR FUSION, 2001, 41 (10) : 1327 - 1340
  • [2] Progress in the ITER Physics Basis - Chapter 1: Overview and summary
    Shimada, M.
    Campbell, D. J.
    Mukhovatov, V.
    Fujiwara, M.
    Kirneva, N.
    Lackner, K.
    Nagami, M.
    Pustovitov, V. D.
    Uckan, N.
    Wesley, J.
    Asakura, N.
    Costley, A. E.
    Donne, A. J. H.
    Doyle, E. J.
    Fasoli, A.
    Gormezano, C.
    Gribov, Y.
    Gruber, O.
    Hender, T. C.
    Houlberg, W.
    Ide, S.
    Kamada, Y.
    Leonard, A.
    Lipschultz, B.
    Loarte, A.
    Miyamoto, K.
    Mukhovatov, V.
    Osborne, T. H.
    Polevoi, A.
    Sipps, A. C. C.
    [J]. NUCLEAR FUSION, 2007, 47 (06) : S1 - S17
  • [3] JET and the Physics Basis of ITER
    Martin Keilhacker
    [J]. Plasma Science and Technology, 2004, (01) : 2109 - 2122
  • [4] JET and the physics basis of ITER
    Keilhacker, M
    [J]. PLASMA SCIENCE & TECHNOLOGY, 2004, 6 (01) : 2109 - 2122
  • [5] The Physics Basis of ITER Confinement
    Wagner, F.
    [J]. 2ND ITER INTERNATIONAL SUMMER SCHOOL: CONFINEMENT, 2009, 1095 : 31 - 53
  • [6] Progress in the ITER physics basis - Preface
    Ikeda, K.
    [J]. NUCLEAR FUSION, 2007, 47 (06)
  • [7] Status and physics basis of the ITER divertor
    Pitts, R. A.
    Kukushkin, A.
    Loarte, A.
    Martin, A.
    Merola, M.
    Kessel, C. E.
    Komarov, V.
    Shimada, M.
    [J]. PHYSICA SCRIPTA, 2009, T138
  • [8] Physics basis for the first ITER tungsten divertor
    Pitts, R. A.
    Bonnin, X.
    Escourbiac, F.
    Frerichs, H.
    Gunn, J. P.
    Hirai, T.
    Kukushkin, A. S.
    Kaveeva, E.
    Miller, M. A.
    Moulton, D.
    Rozhansky, V.
    Senichenkov, I.
    Sytova, E.
    Schmitz, O.
    Stangeby, P. C.
    De Temmerman, G.
    Veselova, I.
    Wiesen, S.
    [J]. NUCLEAR MATERIALS AND ENERGY, 2019, 20
  • [9] Physics design guidelines and methodologies derived from ITER Physics Basis
    Uckan, NA
    Post, DE
    Wesley, JC
    [J]. FUSION TECHNOLOGY, 1998, 34 (03): : 371 - 376
  • [10] ITER physics basis, machine design and diagnostic integration
    Janeschitz, G
    Boucher, D
    Burges, T
    Ioki, K
    Pacher, H
    Parker, R
    Post, D
    Thome, R
    Walker, C
    [J]. DIAGNOSTICS FOR EXPERIMENTAL THERMONUCLEAR FUSION REACTORS 2, 1998, : 1 - 24