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Overview of the first Wendelstein 7-X long pulse campaign with fully water-cooled plasma facing components

44Citations signalées, ce qui n’est pas une note de qualité
51Institutions déclarées
20Pays d’affiliation déclarés

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Le résumé fourni par la source

Abstract After a long device enhancement phase, scientific operation resumed in 2022. The main new device components are the water cooling of all plasma facing components and the new water-cooled high heat flux divertor units. Water cooling allowed for the first long-pulse operation campaign. A maximum discharge length of 8 min was achieved with a total heating energy of 1.3 GJ. Safe divertor operation was demonstrated in attached and detached mode. Stable detachment is readily achieved in some magnetic configurations but requires impurity seeding in configurations with small magnetic pitch angle within the edge islands. Progress was made in the characterization of transport mechanisms across edge magnetic islands: Measurement of the potential distribution and flow pattern reveals that the islands are associated with a strong poloidal drift, which leads to rapid convection of energy and particles from the last closed flux surface into the scrape-off layer. Using the upgraded plasma heating systems, advanced heating scenarios were developed, which provide improved energy confinement comparable to the scenario, in which the record triple product for stellarators was achieved in the previous operation campaign. However, a magnetic configuration-dependent critical heating power limit of the electron cyclotron resonance heating was observed. Exceeding the respective power limit leads to a degradation of the confinement.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Overview of the first Wendelstein 7-X long pulse campaign with fully water-cooled plasma facing components
Date Crossref
15/08/2024
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

Max Planck Institute for Plasma Physics - GreifswaldTechnical University of DenmarkGraz University of TechnologyUniversidad Complutense de MadridCentro de Investigaciones Energéticas, Medioambientales y TecnológicasHUN-REN Centre for Energy ResearchTechnische Universität BerlinUniversity of CagliariNational and Kapodistrian University of AthensMassachusetts Institute of TechnologyMax Planck Institute for Plasma PhysicsOak Ridge National LaboratoryUniversity of Wisconsin–MadisonForschungszentrum JülichHeinrich Heine University DüsseldorfEindhoven University of TechnologyCommissariat à l'Énergie Atomique et aux Énergies AlternativesCEA CadaracheGhent UniversityKarlsruhe Institute of TechnologyKU LeuvenUniversität GreifswaldNational Agency for New Technologies, Energy and Sustainable Economic DevelopmentKharkiv Institute of Physics and TechnologySUNY CortlandAuburn UniversityInstitute of Plasma Physics and Laser MicrofusionNational Institute for Laser Plasma and Radiation PhysicsPrinceton Plasma Physics LaboratoryTechnical University of MunichUniversity of TsukubaNational Institutes of Natural SciencesNational Institute for Fusion ScienceLodz University of TechnologyThe University of TokyoUniversity of StuttgartInstitute for Nuclear ResearchAalto UniversityUniversity of OpoleAustralian National UniversityV. N. Karazin Kharkiv National UniversityNational Research Nuclear University MEPhIÉcole Polytechnique Fédérale de LausanneUniversidad de SevillaUppsala UniversityDutch Institute for Fundamental Energy ResearchUniversity of SzczecinInstitute of PhysicsHiroshima UniversityTohoku UniversityLos Alamos National Laboratory

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

Les sujets associés

Magnetic confinement fusion researchLaser-Plasma Interactions and DiagnosticsFusion materials and technologies

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