Sartori E.; Serianni G.; Veltri P.; Brombin M.; Fadone M.; Marconato N.; Mario I.; Marcuzzi D.; Jain P.; Agnello R.; Casagrande R.; Dal Bello S.; Maistrello A.; Pasqualotto R.; Pimazzoni A.; Poggi C.; Pouradier-Deuteil B.; Segalini B.; Shepherd A.; Spolaore M.; Toigo V.; Ugoletti M.; Zagorski R.; Zaniol B.; Bruno D.; Taccogna F.; Heinemann B.; Wimmer C.; Wunderlich D.; Fantz U.; Nakano H.; Tsumori K.; Tobari H.; Kisaki M.; Kashiwagi M.
Consorzio RFX (CNR, ENEA, INFN, Università di Padova, Acciaierie Venete SpA), Padova, Italy; CNR ISTP - Istituto per la Scienza e la Tecnologia dei Plasmi, Sede di Padova, Italy; ITER Organization; CCFE, Culham Science Centre, Abingdon, Oxon, UK; National Centre for Nuclear Research, Otwock, Poland; Max-Planck-Institut fuer Plasmaphysik, Germany; National institute for Fusion Science, Japan; National Institutes for Quantum and Radiological Science and Technology (QST), Japan.
Giant negative ion sources are used for neutral beam injectors in fusion devices. A high density of cold negative hydrogen ions is required over the large extraction area of the caesium-seeded plasma source, to provide the required negative ion current, distributed uniformly over thousands of extraction apertures. In this regard, it is expected that the expansion of plasma and neutrals from the driver region provides as uniform as possible plasma properties at the extraction region, for adequate compensation of the space charge of such large negative ion density, and relatively slow precursors for the negative ion conversion at caesiated surfaces. These conditions are difficult to achieve in the presence of the transverse magnetic field necessary to filter the diffusion of electrons to the extraction region. The driver region can be either a large volume multi-cusp filament-arc plasma, or an inductively-coupled plasma discharge realised in multiple drivers with external radiofrequency antennas: neutral beams based on filament sources for negative ions reached impressive performances in the recent decades, and an intense development program is in progress for the rf-driven source plasma to bridge the gap in view of the ITER neutral beam injector. The optimization of the ITER beam source plasma, aiming at extracting 350/290 A/m2 of H- /D- with low-divergence at the low filling pressure of 0.3 Pa, is challenging. A review of the ITER beam source physics is provided, based on experimental measurements obtained until now also on the one-to-one prototype SPIDER, and on results of numerical models. This is in the line of the massive work done until now towards the development of negative ion sources, based on both filament arc and rf sources. An overview of the ongoing R&D physics program for SPIDER is also proposed and results of experiments performed at other test facilities are presented.
20th International Conference on Ion Sources (ICIS 2023), Victoria, CB, Canada, 17-22 September 2023
Fusion Plasma Properties, Giant Negative Ion Sources
Serianni Gianluigi, Bruno Domenico, Taccogna Francesco, Spolaore Monica, Brombin Matteo, Toigo Vanni, Fadone Michele, Ugoletti Margherita, Pasqualotto Roberto
ID: 486731
Year: 2023
Type: Presentazione
Creation: 2023-09-25 16:05:09.000
Last update: 2024-01-07 00:43:58.000
CNR institutes
External links
OAI-PMH: Dublin Core
OAI-PMH: Mods
OAI-PMH: RDF
URL: https://meetings.triumf.ca/event/405/contributions/4702/contribution.pdf
External IDs
CNR OAI-PMH: oai:it.cnr:prodotti:486731