We report on the first comprehensive experimental and numerical study of fast ion transport in the helical reversed-field pinch (RFP). Classical orbit effects dominate the macroscopic confinement properties. The strongest effect arises from growth in the dominant fast ion guiding-center island, but substantial influence from remnant subdominant tearing modes also plays a critical role. At the formation of the helical RFP, neutron flux measurements indicate a drastic loss of fast ions at sufficient subdominant mode amplitudes. Simulations corroborate these measurements and suggest that subdominant tearing modes strongly limit fast ion behavior. Previous work details a sharp thermal transport barrier and suggests the helical RFP as an Ohmically heated fusion reactor candidate; the enhanced transport of fast ions reported here identifies a key challenge for this scheme, but a workable scenario is conceivable with low subdominant tearing mode amplitudes.

Fast Ion Transport in the Three-Dimensional Reversed-Field Pinch

Gobbin M;
2019

Abstract

We report on the first comprehensive experimental and numerical study of fast ion transport in the helical reversed-field pinch (RFP). Classical orbit effects dominate the macroscopic confinement properties. The strongest effect arises from growth in the dominant fast ion guiding-center island, but substantial influence from remnant subdominant tearing modes also plays a critical role. At the formation of the helical RFP, neutron flux measurements indicate a drastic loss of fast ions at sufficient subdominant mode amplitudes. Simulations corroborate these measurements and suggest that subdominant tearing modes strongly limit fast ion behavior. Previous work details a sharp thermal transport barrier and suggests the helical RFP as an Ohmically heated fusion reactor candidate; the enhanced transport of fast ions reported here identifies a key challenge for this scheme, but a workable scenario is conceivable with low subdominant tearing mode amplitudes.
2019
Istituto gas ionizzati - IGI - Sede Padova
Inglese
123
5
055001-1
055001-5
5
http://www.scopus.com/record/display.url?eid=2-s2.0-85070263733&origin=inward
Sì, ma tipo non specificato
Capillary flow
Pinch effect
Confinement properties
Enchanched transports
Fast ion transport
Article Number: 055001 / Electronic ISSN: 1079-7114 / This work is supported by the U.S. DOE Office of Science, Office of Fusion Energy Sciences program under Award No. DE-FC02-05ER54814 and accomplished with the use of the infrastructure of Complex DOL (Budker Institute of Nuclear Physics, Russia).
1
info:eu-repo/semantics/article
262
Bonofiglo, P. J.; Anderson, J. K.; Boguski, J.; Kim, J.; Egedal, J.; Gobbin, M.; Spong, D. A.; Parke, E.
01 Contributo su Rivista::01.01 Articolo in rivista
none
   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/20.500.14243/394519
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