Chapter 5: Physics of energetic ions

被引:523
作者
Fasoli, A. [1 ]
Gormenzano, C.
Berk, H. L.
Breizman, B.
Briguglio, S.
Darrow, D. S.
Gorelenkov, N.
Heidbrink, W. W.
Jaun, A.
Konovalov, S. V.
Nazikian, R.
Noterdaeme, J.-M.
Sharapov, S.
Shinohara, K.
Testa, D.
Tobita, K.
Todo, Y.
Vlad, G.
Zonca, F.
机构
[1] Ecole Polytech Fed Lausanne, Assoc Euratom Confederat Suisse, Ctr Rech Phys Plasmas, CH-1015 Lausanne, Switzerland
[2] Assoc EURATOM ENEA Fus, Frascati, Italy
[3] Univ Texas, Austin, TX 78712 USA
[4] Princeton Plasma Phys Lab, Princeton, NJ 08543 USA
[5] Univ Calif Irvine, Irvine, CA USA
[6] Royal Inst Technol, Stockholm, Sweden
[7] RRC Kurchatov Inst, Moscow, Russia
[8] Max Planck Inst Plasma Phys, Garching, Germany
[9] Univ Ghent, EESA Dept, Ghent, Belgium
[10] UKAEA Euratom Fus Assoc, Culham Sci Ctr, Abingdon, Oxon, England
[11] Japan Atom Energy Agcy, Naka, Ibaraki, Japan
[12] Natl Inst Fus Sci, Toki, Japan
关键词
D O I
10.1088/0029-5515/47/6/S05
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
This chapter reviews the progress accomplished since the redaction of the first ITER Physics Basis (1999 Nucl. Fusion 39 2137-664) in the field of energetic ion physics and its possible impact on burning plasma regimes. New schemes to create energetic ions simulating the fusion-produced alphas are introduced, accessing experimental conditions of direct relevance for burning plasmas, in terms of the Alfvenic Mach number and of the normalised pressure gradient of the energetic ions, though orbit characteristics and size cannot always match those of ITER. Based on the experimental and theoretical knowledge of the effects of the toroidal magnetic field ripple on direct fast ion losses, ferritic inserts in ITER are expected to provide a significant reduction of ripple alpha losses in reversed shear configurations. The nonlinear fast ion interaction with kink and tearing modes is qualitatively understood, but quantitative predictions are missing, particularly for the stabilisation of sawteeth by fast particles that can trigger neoclassical tearing modes. A large database on the linear stability properties of the modes interacting with energetic ions, such as the Alfven eigenmode has been constructed. Comparisons between theoretical predictions and experimental measurements of mode structures and drive/damping rates approach a satisfactory degree of consistency, though systematic measurements and theory comparisons of damping and drive of intermediate and high mode numbers, the most relevant for ITER, still need to be performed. The nonlinear behaviour of Alfven eigenmodes close to marginal stability is well characterized theoretically and experimentally, which gives the opportunity to extract some information on the particle phase space distribution from the measured instability spectral features. Much less data exists for strongly unstable scenarios, characterised by nonlinear dynamical processes leading to energetic ion redistribution and losses, and identified in nonlinear numerical simulations of Alfven eigenmodes and energetic particle modes. Comparisons with theoretical and numerical analyses are needed to assess the potential implications of these regimes on burning plasma scenarios, including in the presence of a large number of modes simultaneously driven unstable by the fast ions.
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收藏
页码:S264 / S284
页数:21
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