Search results for "ASDEX Upgrade"

showing 4 items of 4 documents

Evolution of nitrogen concentration and ammonia production in N 2 -seeded H-mode discharges at ASDEX Upgrade

2019

Ammonia formation was studied in a series of dedicated nitrogen seeded H-mode discharges at ASDEX Upgrade. The evolution of ammonia formation was investigated with a reference phase before the seeding, and a long, stable flat-top nitrogen-seeded phase. It was monitored with divertor spectroscopy and analysis of the exhaust gas. The amount of the detected ammonia increased continuously over the course of five discharges with the same nitrogen seeding rate. The same trend was observed in the nitrogen density in the core plasma, as measured by charge exchange recombination spectroscopy and other signals, linked to the effects of nitrogen seeding. The results show that the rate of ammonia forma…

Nuclear and High Energy Physicsammonia; ASDEX Upgrade; mass spectrometry; nitrogen seeding; plasma-surface interaction; residual gas analysisnitrogen seedingDivertorresidual gas analysisAnalytical chemistryExhaust gaschemistry.chemical_elementCondensed Matter Physicsammonia01 natural sciencesNitrogen010305 fluids & plasmasAmmonia productionAmmoniachemistry.chemical_compoundchemistryASDEX Upgrade0103 physical sciencesSeedingASDEX Upgradeplasma-surface interaction010306 general physicsSpectroscopymass spectrometryNuclear Fusion
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Structure and dynamics of sawteeth crashes in ASDEX Upgrade

2010

The crash phase of the sawteeth in ASDEX Upgrade tokamak [Herrmann et al., Fusion Sci. Technol. 44(3), 569 (2003)] is investigated in detail in this paper by means of soft x-ray (SXR) and electron cyclotron emission (ECE) diagnostics. Analysis of precursor and postcursor (1,1) modes shows that the crash does not affect the position of the resonant surface q=1. Our experimental results suggest that sawtooth crash models should contain two ingredients to be consistent with experimental observations: (1) the (1,1) mode structure should survive the crash and (2) the flux changes should be small to preserve the position of the q=1 surface close to its original location. Detailed structure of the…

PhysicsNuclear physicsTokamakASDEX UpgradelawCyclotronPhase (waves)Magnetic reconnectionPlasma diagnosticsSawtooth waveCondensed Matter PhysicsInstabilitylaw.inventionPhysics of Plasmas
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Temporal evolution of neoclassical tearing modes in the frequently interrupted regime

2010

A phenomenological method for description of temporal evolution of neoclassical tearing modes in the frequently interrupted regime (FIR) is proposed. The method makes it possible to predict the beginning and the end of the FIR regime as well as the frequency of the FIR drops. A few experimental parameters which are used in the model are commonly measured quantities. Several specific ASDEX Upgrade (http://en.wikipedia.org/wiki/ASDEX_Upgrade) FIR discharges with different heating and different FIR behavior are analyzed in detail.

PhysicsUpgradeASDEX UpgradePlasma heatingStochastic processTearingMagnetic reconnectionMechanicsStatistical physicsHardware_ARITHMETICANDLOGICSTRUCTURESCondensed Matter PhysicsPhenomenological method
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Erosion, screening, and migration of tungsten in the JET divertor

2019

The erosion of tungsten (W), induced by the bombardment of plasma and impurity particles, determines the lifetime of plasma-facing components as well as impacting on plasma performance by the influx of W into the confined region. The screening of W by the divertor and the transport of W in the plasma determines largely the W content in the plasma core, but the W source strength itself has a vital impact on this process. The JET tokamak experiment provides access to a large set of W erosion-determining parameters and permits a detailed description of the W source in the divertor closest to the ITER one: (i) effective sputtering yields and fluxes as function of impact energy of intrinsic (Be,…

tungsten divertorNuclear and High Energy PhysicsMaterials scienceNuclear engineeringchemistry.chemical_elementTungsten01 natural sciences010305 fluids & plasmaserosion and depositionASDEX UpgradePhysics::Plasma PhysicsImpurity0103 physical sciencesITER divertor010306 general physicsW spectroscopyJet (fluid)DivertorPlasmaequipment and suppliesCondensed Matter::Mesoscopic Systems and Quantum Hall EffectCondensed Matter PhysicsERO modellingchemistryJETPhysics::Space PhysicsErosionPhysics::Accelerator PhysicsAstrophysics::Earth and Planetary Astrophysicsddc:620Nuclear Fusion
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