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Overview of physics studies on ASDEX upgrade

Authors :
the ASDEX-Upgrade team
de Baar, Marco R.
Blanken, T.C.
Maljaars, E.
Vanovac, B.
van Vugt, D.
the ASDEX-Upgrade team
de Baar, Marco R.
Blanken, T.C.
Maljaars, E.
Vanovac, B.
van Vugt, D.
Source :
Nuclear Fusion vol.59 (2019) date: 2019-07-22 nr.11 [ISSN 0029-5515]
Publication Year :
2019

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

Details

Database :
OAIster
Journal :
Nuclear Fusion vol.59 (2019) date: 2019-07-22 nr.11 [ISSN 0029-5515]
Notes :
the ASDEX-Upgrade team
Publication Type :
Electronic Resource
Accession number :
edsoai.on1122938652
Document Type :
Electronic Resource