Published January 1, 2020 | Version v1
Journal article

Progress and challenges in understanding core transport in tokamaks in support to ITER operations

  • 1. Istituto per la Scienza e Tecnologia dei Plasmi, Consiglio Nazionale delle Ricerche, Milano (Italy)
  • 2. Max-Planck-Institut für Plasmaphysik, D-85748 Garching (Germany)
  • 3. DIFFER—Dutch Institute for Fundamental Energy Research, Eindhoven (Netherlands)
  • 4. Princeton Plasma Physics Laboratory, Princeton University, Princeton, NJ 08543 (United States)
  • 5. UKAEA Culham Centre for Fusion Energy, Abingdon, Oxon, OX14 3DB (United Kingdom)
  • 6. General Atomics, San Diego, CA 92186-5608 (United States)

Description

Fusion performance in tokamaks depends on the core and edge regions as well as on their nonlinear feedbacks. The achievable degree of edge confinement under the constraints of power handling in presence of a metallic wall is still an open question. Therefore, any improvement in the core temperature and density peaking is crucial for achieving target performance. This has motivated further progress in understanding core turbulent transport mechanisms, to help scenario development in present devices and improve predictive tools for ITER operations. In the last two decades, detailed experiments and their interpretation via the gyrokinetic theory of turbulent transport have led to a satisfactory level of understanding of the heat, particle, and momentum transport channels and of their mutual interactions. This paper presents some highlights of the progress, which stems from joint work of several devices and theory groups, in Europe and worldwide within the International Tokamak Physics Activities framework. On the other hand, the achievement of predictive capabilities of plasma profiles via integrated modeling, which also accounts for the nonlinear interactions inherent to the multi-channel nature of transport, is a priority in view of ITER. This requires using faster, reduced models, and the extent to which they capture the complex physics described by nonlinear gyrokinetics must be carefully evaluated. Present quasi-linear models match well experiments in baseline scenarios, and thus offer reliable predictions for the ITER reference scenario, but have issues in advanced scenarios. Some of these challenges are examined and discussed. In the longer term, advances in high performance computing will continue to drive physics discovery through increasingly complex gyrokinetic simulations, allowing also further development of reduced models. The development of neural network surrogate models is another recent advance that bridges the gap towards physics-based fast models for optimization and control applications. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1361-6587/ab5ae1

Additional details

Identifiers

Publishing Information

Journal Title
Plasma Physics and Controlled Fusion
Journal Volume
62
Journal Issue
1
Journal Page Range
[13 p.]
ISSN
0741-3335
CODEN
PPCFET

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
52067685
Subject category
S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Descriptors DEI
FEEDBACK; INTERACTIONS; ITER TOKAMAK; NEURAL NETWORKS; NONLINEAR PROBLEMS; OPTIMIZATION; PERFORMANCE; PLASMA CONFINEMENT; PLASMA RADIAL PROFILES; SIMULATION
Descriptors DEC
CLOSED PLASMA DEVICES; THERMONUCLEAR DEVICES; THERMONUCLEAR REACTORS; TOKAMAK DEVICES; TOKAMAK TYPE REACTORS