N. Lazanyi
European Atomic Energy Community
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Featured researches published by N. Lazanyi.
Nuclear Fusion | 2013
M. Garcia-Munoz; S. Äkäslompolo; O. Asunta; J. Boom; X. Chen; I. G. J. Classen; R. Dux; T.E. Evans; S. Fietz; R.K. Fisher; C. Fuchs; B. Geiger; W. W. Heidbrink; M. Hölzl; V. Igochine; J. Kim; Jun Young Kim; T. Kurki-Suonio; B. Kurzan; N. Lazanyi; N. Luhmann; T. Lunt; R. M. McDermott; M. Maraschek; M. Nocente; H. Park; G. I. Pokol; D. C. Pace; T.L. Rhodes; K. Shinohara
The impact of edge localized modes (ELMs) and externally applied resonant and non-resonant magnetic perturbations (MPs) on fast-ion confinement/transport have been investigated in the ASDEX Upgrade (AUG), DIII-D and KSTAR tokamaks. Two phases with respect to the ELM cycle can be clearly distinguished in ELM-induced fast-ion losses. Inter-ELM losses are characterized by a coherent modulation of the plasma density around the separatrix while intra-ELM losses appear as well-defined bursts. In high collisionality plasmas with mitigated ELMs, externally applied MPs have little effect on kinetic profiles, including fast-ions, while a strong impact on kinetic profiles is observed in low-collisionality, low q95 plasmas with resonant and non-resonant MPs. In low-collisionality H-mode plasmas, the large fast-ion filaments observed during ELMs are replaced by a loss of fast-ions with a broad-band frequency and an amplitude of up to an order of magnitude higher than the neutral beam injection prompt loss signal without MPs. A clear synergy in the overall fast-ion transport is observed between MPs and neoclassical tearing modes. Measured fast-ion losses are typically on banana orbits that explore the entire pedestal/scrape-off layer. The fast-ion response to externally applied MPs presented here may be of general interest for the community to better understand the MP field penetration and overall plasma response.
Plasma Physics and Controlled Fusion | 2013
M. Garcia-Munoz; S. Äkäslompolo; P. de Marné; M. Dunne; R. Dux; T.E. Evans; N.M. Ferraro; S. Fietz; C. Fuchs; B. Geiger; A. Herrmann; M. Hoelzl; B. Kurzan; N. Lazanyi; R. M. McDermott; M. Nocente; D. C. Pace; M. Rodriguez-Ramos; K. Shinohara; E. Strumberger; W. Suttrop; M. A. Van Zeeland; E. Viezzer; M Willensdorfer; E. Wolfrum
Phase-space time-resolved measurements of fast-ion losses induced by edge localized modes (ELMs) and ELM mitigation coils have been obtained in the ASDEX Upgrade tokamak by means of multiple fast-ion loss detectors (FILDs). Filament-like bursts of fast-ion losses are measured during ELMs by several FILDs at different toroidal and poloidal positions. Externally applied magnetic perturbations (MPs) have little effect on plasma profiles, including fast-ions, in high collisionality plasmas with mitigated ELMs. A strong impact on plasma density, rotation and fast-ions is observed, however, in low density/collisionality and q95 plasmas with externally applied MPs. During the mitigation/suppression of type-I ELMs by externally applied MPs, the large fast-ion bursts observed during ELMs are replaced by a steady loss of fast-ions with a broad-band frequency and an amplitude of up to an order of magnitude higher than the neutral beam injection (NBI) prompt loss signal without MPs. Multiple FILD measurements at different positions, indicate that the fast-ion losses due to static 3D fields are localized on certain parts of the first wall rather than being toroidally/poloidally homogeneously distributed. Measured fast-ion losses show a broad energy and pitch-angle range and are typically on banana orbits that explore the entire pedestal/scrape-off-layer (SOL). Infra-red measurements are used to estimate the heat load associated with the MP-induced fast-ion losses. The heat load on the FILD detector head and surrounding wall can be up to six times higher with MPs than without 3D fields. When 3D fields are applied and density pump-out is observed, an enhancement of the fast-ion content in the plasma is typically measured by fast-ion D-alpha (FIDA) spectroscopy. The lower density during the MP phase also leads to a deeper beam deposition with an inward radial displacement of ?2?cm in the maximum of the beam emission. Orbit simulations are used to test different models for 3D field equilibrium reconstruction including vacuum representation, the free boundary NEMEC code and the two-fluid M3D-C1 code which account for the plasma response. Guiding center simulations predict the maximum level of losses, ?2.6%, with NEMEC 3D equilibrium. Full orbit simulations overestimate the level of losses in 3D vacuum fields with ?15% of lost NBI ions.
Nuclear Fusion | 2016
J. Juul Rasmussen; S. K. Nielsen; M. Stejner; J. Galdon-Quiroga; M. Garcia-Munoz; B. Geiger; A. S. Jacobsen; F. Jaulmes; Søren Bang Korsholm; N. Lazanyi; F. Leipold; F. Ryter; M. Salewski; M. Schubert; J. Stober; D. Wagner; EUROfusion Mst Team
Sawtooth instabilities can modify heating and current-drive profiles and potentially increase fast-ion losses. Understanding how sawteeth redistribute fast ions as a function of sawtooth parameters and of fast-ion energy and pitch is hence a subject of particular interest for future fusion devices. Here we present the first collective Thomson scattering (CTS) measurements of sawtooth-induced redistribution of fast ions at ASDEX Upgrade. These also represent the first localized fast-ion measurements on the high-field side of this device. The results indicate fast-ion losses in the phase-space measurement volume of about 50% across sawtooth crashes, in good agreement with values predicted with the Kadomtsev sawtooth model implemented in TRANSP and with the sawtooth model in the EBdyna_go code. In contrast to the case of sawteeth, we observe no fast-ion redistribution in the presence of fishbone modes. We highlight how CTS measurements can discriminate between different sawtooth models, in particular when aided by multi-diagnostic velocity-space tomography, and briefly discuss our results in light of existing measurements from other fast-ion diagnostics.
European Physical Society Conference on Plasma Physics | 2015
M. Garcia-Munoz; M. A. Van Zeeland; S. E. Sharapov; I. G. J. Classen; V. Bobkov; J. Galdon-Quiroga; B. Geiger; V. Igochine; P. Lauber; N. Lazanyi; F. Nabais; V. Nikoleva; D. C. Pace; M. Rodriguez-Ramos; L. Sanchis-Sanchez; M. Schneller; A. Snicker; J. Stober
42nd European Physical Society Conference on Plasma Physics, EPS 2015 | 2015
M. Garcia-Munoz; M. A. Van Zeeland; S. E. Sharapov; I. G. J. Classen; B. Bobkov; J. Galdon-Quiroga; B. Geiger; V. Igochine; P. Lauber; N. Lazanyi; F. Nabais; V. Nikoleva; D. C. Pace; M. Rodriguez-Ramos; L. Sanchis-Sanchez; M. Schneller; Antti Snicker; J. Stober
42nd EPS Conference on Plasma Physics | 2015
M. Garcia-Munoz; M. A. Van Zeeland; S. E. Sharapov; I. G. J. Classen; B. Bobkov; J. Galdon-Quiroga; B. Geiger; V. Igochine; P. Lauber; N. Lazanyi; F. Nabais; D. C. Pace; M. Rodriguez-Ramos; L. Sanchis-Sanchez; M. Schneller; A. Snicker; J. Stober
1st EPS Conference on Plasma Diagnostics (ECPD) | 2015
M. Rodriguez-Ramos; J. Galdon-Quiroga; J. García-López; M. Garcia-Munoz; M. C. Jiménez-Ramos; N. Lazanyi; G. I. Pokol; G. Por; L. Sanchis-Sanchez
1st EPS Conference on Plasma Diagnostics (ECPD) | 2015
N. Lazanyi; M. Garcia-Munoz; S. Zoletnik; D. Dunai; G. Por; G. I. Pokol; Á. Kovácsik; M. Rodriguez-Ramos; J. García-López; M. C. Jiménez-Ramos; J. Galdon-Quiroga; L. Sanchis-Sanchez
1st EPS Conference on Plasma Diagnostics (ECPD) | 2015
J. Galdon; M. Garcia-Munoz; R. Akers; K. G. McClements; A. Snicker; J. García-López; M. C. Jiménez-Ramos; N. Lazanyi; M. Rodriguez-Ramos; L. Sanchis-Sanchez
14th IAEA Technical Meeting on Energetic Particles in Magnetic Confinement Systems | 2015
M. Garcia-Munoz; M. A. Van Zeeland; S. E. Sharapov; I. G. J. Classen; B. Bobkov; J. Galdon-Quiroga; B. Geiger; V. Igochine; P. Lauber; N. Lazanyi; F. Nabais; D. C. Pace; M. Rodriguez-Ramos; L. Sanchis-Sanchez; M. Schneller; A. Snicker; J. Stober; EUROfusion Mst Team