The reversed-field pinch configuration for the magnetic confinement of fusion plasmas is characterized by the emergence of self-organized quasi-helical states found both in magnetohydrodynamics (MHD) simulations and in high current RFP experiments. Numerical modeling can reproduce with high fidelity the MHD dynamics of high current RFP experiments, which are characterized by the formation of helical states, quasi-periodically relaxed to 3D states by strong reconnection events [1]. Seed helical perturbations at the magnetic boundary are expected to direct the plasma towards alternative helical states and first experimental tests have indeed confirmed this capability. Of particular interest is the possibility to stimulate non-resonant helical states, which feature better topological properties [2, 3]. Simulation results and first experimental evidence of alternative helical states formation in RFX-mod will be presented, together with a discussion of the different magnetic topology properties and their impact on transport barrier formation [4]. [1] Bonfiglio et. al. "Experimental-like Helical Self-Organization in Reversed-Field Pinch Modeling", PRL 111, 085002 (2013) [2] Veranda et. al. "Impact of helical boundary conditions on nonlinear 3D magnetohydrodynamic simulations of reversed-field pinch", PPCF 55 074015 (2013) [3] Veranda et. al. in preparation [4] Rubino et. al. "Detection of magnetic barriers in a chaotic domain: first application of Finite Time Lyapunov Exponent method to a magnetic confinement configuration", PPCF 57 085004 (2015)

Macroscopic dynamics, topology and transport barrier formation in Reversed Field Pinch plasmas

Bonfiglio D;Cappello S;Gobbin M;Puiatti ME
2015

Abstract

The reversed-field pinch configuration for the magnetic confinement of fusion plasmas is characterized by the emergence of self-organized quasi-helical states found both in magnetohydrodynamics (MHD) simulations and in high current RFP experiments. Numerical modeling can reproduce with high fidelity the MHD dynamics of high current RFP experiments, which are characterized by the formation of helical states, quasi-periodically relaxed to 3D states by strong reconnection events [1]. Seed helical perturbations at the magnetic boundary are expected to direct the plasma towards alternative helical states and first experimental tests have indeed confirmed this capability. Of particular interest is the possibility to stimulate non-resonant helical states, which feature better topological properties [2, 3]. Simulation results and first experimental evidence of alternative helical states formation in RFX-mod will be presented, together with a discussion of the different magnetic topology properties and their impact on transport barrier formation [4]. [1] Bonfiglio et. al. "Experimental-like Helical Self-Organization in Reversed-Field Pinch Modeling", PRL 111, 085002 (2013) [2] Veranda et. al. "Impact of helical boundary conditions on nonlinear 3D magnetohydrodynamic simulations of reversed-field pinch", PPCF 55 074015 (2013) [3] Veranda et. al. in preparation [4] Rubino et. al. "Detection of magnetic barriers in a chaotic domain: first application of Finite Time Lyapunov Exponent method to a magnetic confinement configuration", PPCF 57 085004 (2015)
2015
Istituto gas ionizzati - IGI - Sede Padova
Inglese
Italian National Conference on Condensed Matter Physics (Including Optics, Photonics, Liquids, Soft Matter) Palermo, September 28 - October 2, 2015 BOOK OF ABSTRACT
FISMAT 2015, Italian National Conference on Condensed Matter Physics
978-88-907460-8-6
http://eventi.cnism.it/fismat2015/submission/view/1168
September 28 - October 2, 2015
Palermo, Italy
-
http://eventi.cnism.it/sites/default/files/fismat2015/FisMat%202015%20book%20of%20abstract.pdf#overlay-context=fismat2015
8
info:eu-repo/semantics/conferenceObject
none
274
04 Contributo in convegno::04.02 Abstract in Atti di convegno
Veranda, M; Bonfiglio, D; Cappello, S; Chacòn, L; Escande, Df; Franz, P; Gobbin, M; Puiatti, Me
   Implementation of activities described in the Roadmap to Fusion during Horizon 2020 through a Joint programme of the members of the EUROfusion consortium
   EUROfusion
   H2020
   633053
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/306998
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