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dc.creatorViezzer, Eleonoraes
dc.creatorAustin, M. E.es
dc.creatorBernert, M.es
dc.creatorBurrell, K. H.es
dc.creatorCano Megías, Pilares
dc.creatorChen, X.es
dc.creatorCruz Zabala, Diego Josées
dc.creatorCoda, S.es
dc.creatorFaitsch, M.es
dc.creatorFévrier, O.es
dc.creatorOyola Domínguez, Pabloes
dc.creatorSolano, E. R.es
dc.date.accessioned2023-04-18T14:20:05Z
dc.date.available2023-04-18T14:20:05Z
dc.date.issued2023
dc.identifier.citationViezzer, E., Austin, M.E., Bernert, M., Burrell, K.H., Cano Megías, P., Chen, X.,...,Solano, E.R. (2023). Prospects of Core–edge Integrated No-ELM and Small-ELM Scenarios for Future Fusion Devices. Nuclear Materials and Energy, 34, 101308. https://doi.org/10.1016/j.nme.2022.101308.
dc.identifier.issn2352-1791es
dc.identifier.urihttps://hdl.handle.net/11441/144596
dc.description.abstractOne of our grand challenges towards fusion energy is the achievement of a high-performance plasma core coupled to a boundary solution. The high confinement mode (H-mode) provides such a high-performance fusion core due to the build-up of an edge transport barrier leading to a pedestal. However, it usually features type-I edge localized modes (ELMs) which pose a threat for long-duration plasma operation in future fusion devices as they induce large energy fluences onto the plasma facing components and typically are projected to damage the first wall. For future fusion devices, the integration of a stationary no-ELM regime with a power exhaust solution is indispensable. Several no-ELM and small-ELM regimes have extended their operational space in the past years, with the ultimate goal of providing an alternative core–edge solution to ITER and EU-DEMO. Prominent no-ELM or small-ELM alternatives include the I-mode, QH-mode, EDA H-mode, quasi-continuous exhaust (QCE) and ‘grassy’ ELM regimes, X-point radiator scenarios and negative triangularity L-mode. The state-of-the-art, including access conditions and main signatures, of these alternative regimes is reviewed. Many of these regimes partly match the operational space of ITER and EU-DEMO, however, knowledge gaps remain. Besides compatibility with divertor detachment and a radiative mantle, these include extrapolations to high Q operations, low core collisionality, high Greenwald fractions, impurity transport, amongst others. The knowledge gaps and possible strategies to close these gaps to show their applicability to ITER and EU-DEMO are discussed.es
dc.description.sponsorshipEuropean Union 101052200es
dc.description.sponsorshipEuropean Research Council 805162es
dc.description.sponsorshipDepartment of Energy DE-SC0014264es
dc.formatapplication/pdfes
dc.format.extent12 p.es
dc.language.isoenges
dc.publisherElsevieres
dc.relation.ispartofNuclear Materials and Energy, 34, 101308.
dc.rightsAtribución 4.0 Internacional*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectCore–edge integrationes
dc.subjectEdge localized modeses
dc.subjectPlasma confinement and transportes
dc.titleProspects of Core–edge Integrated No-ELM and Small-ELM Scenarios for Future Fusion Deviceses
dc.typeinfo:eu-repo/semantics/articlees
dcterms.identifierhttps://ror.org/03yxnpp24
dc.type.versioninfo:eu-repo/semantics/publishedVersiones
dc.rights.accessRightsinfo:eu-repo/semantics/openAccesses
dc.contributor.affiliationUniversidad de Sevilla. Departamento de Física Atómica, Molecular y Nucleares
dc.contributor.affiliationUniversidad de Sevilla. Departamento de Ingeniería Energética
dc.relation.projectID101052200es
dc.relation.projectID805162es
dc.relation.projectIDDE-SC0014264es
dc.relation.publisherversionhttps://dx.doi.org/10.1016/j.nme.2022.101308es
dc.identifier.doi10.1016/j.nme.2022.101308es
dc.journaltitleNuclear Materials and Energyes
dc.publication.volumen34es
dc.publication.initialPage101308es
dc.contributor.funderEuropean Union (UE)es
dc.contributor.funderEuropean Research Council (ERC)es
dc.contributor.funderDepartment of Energy. United Stateses

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