Radial electric field and density fluctuations measured by Doppler reflectometry during the post-pellet enhanced confinement phase in W7-X

dc.contributor.authorEstrada, Teresa
dc.contributor.authorCarralero, Daniel
dc.contributor.authorWindisch, Thomas
dc.contributor.authorSánchez, Edilberto
dc.contributor.authorGarcía-Regaña, José Manuel
dc.contributor.authorMartínez-Fernández, José
dc.contributor.authorde la Peña, Angel
dc.contributor.authorVelasco, José Luis
dc.contributor.authorAlonso, Arturo
dc.contributor.authorBeurskens, Mark
dc.contributor.authorBozhenkov, Sergey
dc.date.accessioned2026-01-08T12:43:39Z
dc.date.available2026-01-08T12:43:39Z
dc.date.issued2021-03-08
dc.description.abstractRadial profiles of density fluctuations and the radial electric field, Er, have been measured using Doppler reflectometry during the post-pellet enhanced confinement phase achieved, under different heating power levels and magnetic configurations, during the 2018 W7-X experimental campaign. A pronounced Er-well is measured with local values as high as −40 kV m−1 in the radial range ρ ∼ 0.7–0.8 during the post-pellet enhanced confinement phase. The maximum Er intensity scales with both the plasma density and electron cyclotron heating power level, following a similar trend to the plasma energy content. A good agreement is found when the experimental Er profiles are compared to simulations carried out using the neoclassical codes, the drift kinetic equation solver (DKES) and kinetic orbit-averaging solver for stellarators (KNOSOS). The density fluctuation level decreases from the plasma edge toward the plasma core and the drop is more pronounced in the post-pellet enhanced confinement phase than in reference gas-fuelled plasmas. Besides, in the post-pellet phase, the density fluctuation level is lower in the high iota magnetic configuration than in the standard one. To determine whether this difference is related to the differences in the plasma profiles or to the stability properties of the two configurations, gyrokinetic simulations have been carried out using the codes stella and EUTERPE. The simulation results point to the plasma profile evolution after the pellet injection and the stabilization effect of the radial electric field profile as the dominant players in the stabilization of the plasma turbulence.es_ES
dc.description.sponsorshipThis work has been partially funded by the Spanish Ministry of Science and Innovation under contract Nos.FIS2017- 88892-P and PGC2018-095307-B-100. This work has been carried out within the framework of the EUROfusion Consortium and has received funding from the Euratom research and training programme 2014–2018 and 2019–2020 under Grant Agreement No. 633053.es_ES
dc.identifier.citationT. Estrada et al 2021 Nucl. Fusion 61 046008es_ES
dc.identifier.doi10.1088/1741-4326/ab03a7
dc.identifier.otherhttps://arxiv.org/abs/2512.15576
dc.identifier.otherhttps://iopscience.iop.org/article/10.1088/1741-4326/abddee
dc.identifier.urihttps://hdl.handle.net/20.500.14855/5412
dc.language.isoenges_ES
dc.publisherIOP Publishinges_ES
dc.rights.accessRightsopen accesses_ES
dc.subjectPlasma Turbulencees_ES
dc.subjectStellaratorses_ES
dc.subjectPlasma Flowses_ES
dc.subjectDoppler Reflectometryes_ES
dc.subjectMagnetic Confinementes_ES
dc.titleRadial electric field and density fluctuations measured by Doppler reflectometry during the post-pellet enhanced confinement phase in W7-Xes_ES
dc.typejournal articlees_ES
dc.type.hasVersionVoRes_ES

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