High current plasmas in the RFX-mod experiment are characterized by a 3D helical magnetic topology where internal electron transport barriers, with a temperature up to 1.2 keV, develop in the core. Power balance and heat transport analyses have been performed for the first time using high time resolution electron temperature Te measurements obtained by a double filter technique with a multichords soft-x-ray (SXR) diagnostic. Te profiles are implemented in the heat transport equation in order to determine the electron thermal diffusivity across the helical magnetic surfaces assuming both stationary and dynamic conditions. In order to explain the discrepancy between the experimental thermal diffusivity at the barrier and the lower neoclassical predictions, the role of residual macro and microscale magnetic stochasticity on the temperature gradient is investigated. The fast termination of helical structures, analyzed by a statistical approach, reveals the different time scales involved in the dynamics of magnetic and thermal plasma properties.

Heat transport in helical RFX-mod plasmas by electron temperature dynamics from soft-x-ray diagnostics

M Gobbin;I Predebon;L Marrelli;D Terranova
2013

Abstract

High current plasmas in the RFX-mod experiment are characterized by a 3D helical magnetic topology where internal electron transport barriers, with a temperature up to 1.2 keV, develop in the core. Power balance and heat transport analyses have been performed for the first time using high time resolution electron temperature Te measurements obtained by a double filter technique with a multichords soft-x-ray (SXR) diagnostic. Te profiles are implemented in the heat transport equation in order to determine the electron thermal diffusivity across the helical magnetic surfaces assuming both stationary and dynamic conditions. In order to explain the discrepancy between the experimental thermal diffusivity at the barrier and the lower neoclassical predictions, the role of residual macro and microscale magnetic stochasticity on the temperature gradient is investigated. The fast termination of helical structures, analyzed by a statistical approach, reveals the different time scales involved in the dynamics of magnetic and thermal plasma properties.
2013
Istituto gas ionizzati - IGI - Sede Padova
Inglese
55
10
11
http://iopscience.iop.org/0741-3335/55/10/105010/pdf/0741-3335_55_10_105010.pdf
Sì, ma tipo non specificato
REVERSED-FIELD-PINCH
MAGNETIC SELF-ORGANIZATION
CONFINEMENT
PARADIGM
TOKAMAKS
This work was supported by the European Communities under the contract of association between EURATOM/ENEA."Funding under Association Contract FU07-CT-2007-00053". / Article Number: 105010. / La rivista è pubblicata anche online con ISSN 1361-6587.
9
info:eu-repo/semantics/article
262
Gobbin, M; Franz, P; Lorenzini, R; Predebon, I; Ruzzon, A; Fassina, A; Marrelli, L; Momo, B; Terranova, D
01 Contributo su Rivista::01.01 Articolo in rivista
none
   EU Fusion for ITER Applications
   EUFORIA
   FP7
   211804
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/210233
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