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Accès ouvert déclaré 2019 article

Overview of physics studies on ASDEX Upgrade

50Citations signalées, ce qui n’est pas une note de qualité
60Institutions déclarées
20Pays d’affiliation déclarés

Rattachement africain : gb, de, at, fi, nl, pt, us, fr, es, it, ch, hu, pl, dk, cz, ua, be, ie, se, cn. Niveau de preuve : code pays fourni par la source.

Le résumé fourni par la source

Abstract The ASDEX Upgrade (AUG) programme, jointly run with the EUROfusion MST1 task force, continues to significantly enhance the physics base of ITER and DEMO. Here, the full tungsten wall is a key asset for extrapolating to future devices. The high overall heating power, flexible heating mix and comprehensive diagnostic set allows studies ranging from mimicking the scrape-off-layer and divertor conditions of ITER and DEMO at high density to fully non-inductive operation (q 95 = 5.5, ) at low density. Higher installed electron cyclotron resonance heating power 6 MW, new diagnostics and improved analysis techniques have further enhanced the capabilities of AUG. Stable high-density H-modes with MW m−1 with fully detached strike-points have been demonstrated. The ballooning instability close to the separatrix has been identified as a potential cause leading to the H-mode density limit and is also found to play an important role for the access to small edge-localized modes (ELMs). Density limit disruptions have been successfully avoided using a path-oriented approach to disruption handling and progress has been made in understanding the dissipation and avoidance of runaway electron beams. ELM suppression with resonant magnetic perturbations is now routinely achieved reaching transiently . This gives new insight into the field penetration physics, in particular with respect to plasma flows. Modelling agrees well with plasma response measurements and a helically localised ballooning structure observed prior to the ELM is evidence for the changed edge stability due to the magnetic perturbations. The impact of 3D perturbations on heat load patterns and fast-ion losses have been further elaborated. Progress has also been made in understanding the ELM cycle itself. Here, new fast measurements of and E r allow for inter ELM transport analysis confirming that E r is dominated by the diamagnetic term even for fast timescales. New analysis techniques allow detailed comparison of the ELM crash and are in good agreement with nonlinear MHD modelling. The observation of accelerated ions during the ELM crash can be seen as evidence for the reconnection during the ELM. As type-I ELMs (even mitigated) are likely not a viable operational regime in DEMO studies of ‘natural’ no ELM regimes have been extended. Stable I-modes up to have been characterised using -feedback. Core physics has been advanced by more detailed characterisation of the turbulence with new measurements such as the eddy tilt angle—measured for the first time—or the cross-phase angle of and fluctuations. These new data put strong constraints on gyro-kinetic turbulence modelling. In addition, carefully executed studies in different main species (H, D and He) and with different heating mixes highlight the importance of the collisional energy exchange for interpreting energy confinement. A new regime with a hollow profile now gives access to regimes mimicking aspects of burning plasma conditions and lead to nonlinear interactions of energetic particle modes despite the sub-Alfvénic beam energy. This will help to validate the fast-ion codes for predicting ITER and DEMO.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Overview of physics studies on ASDEX Upgrade
Date Crossref
22/07/2019
Éditeur
IOP Publishing
Type
journal-article

Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.

Les institutions déclarées

Culham Science CentreUnited Kingdom Atomic Energy AuthorityMax Planck Institute for Plasma PhysicsGraz University of TechnologyAalto UniversityDutch Institute for Fundamental Energy ResearchInstituto de Engenharia de Sistemas e Computadores Investigação e DesenvolvimentoUniversity of LisbonTechnical University of MunichEindhoven University of TechnologyPrinceton Plasma Physics LaboratoryCommissariat à l'Énergie Atomique et aux Énergies AlternativesCEA CadaracheForschungszentrum JülichInstitut Jean LamourUniversité de LorraineCentre National de la Recherche ScientifiqueAix-Marseille UniversitéUniversidad Complutense de MadridNational Agency for New Technologies, Energy and Sustainable Economic DevelopmentUniversity of WarwickÉcole Polytechnique Fédérale de LausanneUniversität InnsbruckUniversity of Wisconsin–MadisonFusion (United States)Plasma Technology (United States)Fusion AcademyInstitute of Plasma PhysicsHUN-REN Wigner Research Centre for PhysicsInstitute of Plasma Physics and Laser MicrofusionUniversity of YorkKarlsruhe Institute of TechnologyMax Planck Institute for Plasma Physics - GreifswaldUniversidad de SevillaUniversity of Milano-BicoccaVTT Technical Research Centre of FinlandTU WienMax Planck Computing and Data FacilityGeneral Atomics (United States)École PolytechniqueLaboratoire de Physique des PlasmasUniversity of StuttgartTechnical University of DenmarkBudapest University of Technology and EconomicsInstitute of Nuclear Physics, Polish Academy of SciencesCzech Academy of Sciences, Institute of Plasma PhysicsKharkiv Institute of Physics and TechnologyRoyal Military AcademyGhent UniversityITERUniversity of California, DavisPolitecnico di TorinoInstitució Catalana de Recerca i Estudis AvançatsBarcelona Supercomputing CenterUniversitat Politècnica de CatalunyaUniversity College CorkChalmers University of TechnologyUniversity of CagliariChinese Academy of SciencesInstitute of Plasma Physics

Une affiliation ne permet pas de déduire la nationalité d’un auteur.

Les sujets associés

Magnetic confinement fusion researchParticle accelerators and beam dynamicsSuperconducting Materials and Applications

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