SPIDER, an RF-driven negative ion source in the Neutral Beam Test Facility (NBTF), serves as the prototype for ITER's neutral beam injector (NBI). It is composed of 8 drivers powered by 4 RF generators, aiming to accelerate 50A of negative hydrogen ions to 100KeV with a beam uniformity target of 10%. The experiment, launched in 2018, tested negative ion production using caesium. Results match those of similar facilities, but SPIDER faces challenges due to its size, multiple drivers, and non-uniform plasma expansion. These issues impact beam uniformity, preventing the machine from reaching expected performance. To address this, SPIDER initiated a significant shutdown at the end of 2021 for improvements.One the most important aspects studied during the first experimental campaign is source uniformity, addressed both in terms of plasma and of caesium distribution. The latter is particularly relevant since its quality is directly related to the beam uniformity and divergence. To have more insight about these issues, monitoring the plasma properties in the extraction region is crucial, hence in the present contribution, the design and development of two new diagnostic systems are described: a movable Langmuir probe and a Retarding Field Energy Analyser (RFEA). The first can provide a vertical scan of the main plasma parameters close to the plasma grid.The spatial resolution would improve with respect to the already installed set of fixed Langmuir probes embedded in the grid system, and the newly installed diagnostic could interact with othersensors to produce complementary measurements (namely, electron photo-detachment). The latter,instead, allows the monitoring of the positive ion energy distribution: positive ions, in fact, can be precursors of the negative ones produced at the caesiated surface, but also influence the energy of negative ion and their extraction probability and thus collecting information about their energy distribution allows inferring details about the extracted negative ion beam.The two diagnostics are designed focusing on the experimental constraint of integrating thediagnostics in a harsh and complex environment such as SPIDER plasma: a preliminary study of theplacement inside the source is carried out, then the electrode of the movable probe and the RFEAsensor are sized according to the spatial and energy resolution requested by the system.

Study and development of diagnostic systems to characterise the extraction region in SPIDER

Trevisan L.;Pasqualotto R.;Serianni G.;Sartori E.
2024

Abstract

SPIDER, an RF-driven negative ion source in the Neutral Beam Test Facility (NBTF), serves as the prototype for ITER's neutral beam injector (NBI). It is composed of 8 drivers powered by 4 RF generators, aiming to accelerate 50A of negative hydrogen ions to 100KeV with a beam uniformity target of 10%. The experiment, launched in 2018, tested negative ion production using caesium. Results match those of similar facilities, but SPIDER faces challenges due to its size, multiple drivers, and non-uniform plasma expansion. These issues impact beam uniformity, preventing the machine from reaching expected performance. To address this, SPIDER initiated a significant shutdown at the end of 2021 for improvements.One the most important aspects studied during the first experimental campaign is source uniformity, addressed both in terms of plasma and of caesium distribution. The latter is particularly relevant since its quality is directly related to the beam uniformity and divergence. To have more insight about these issues, monitoring the plasma properties in the extraction region is crucial, hence in the present contribution, the design and development of two new diagnostic systems are described: a movable Langmuir probe and a Retarding Field Energy Analyser (RFEA). The first can provide a vertical scan of the main plasma parameters close to the plasma grid.The spatial resolution would improve with respect to the already installed set of fixed Langmuir probes embedded in the grid system, and the newly installed diagnostic could interact with othersensors to produce complementary measurements (namely, electron photo-detachment). The latter,instead, allows the monitoring of the positive ion energy distribution: positive ions, in fact, can be precursors of the negative ones produced at the caesiated surface, but also influence the energy of negative ion and their extraction probability and thus collecting information about their energy distribution allows inferring details about the extracted negative ion beam.The two diagnostics are designed focusing on the experimental constraint of integrating thediagnostics in a harsh and complex environment such as SPIDER plasma: a preliminary study of theplacement inside the source is carried out, then the electrode of the movable probe and the RFEAsensor are sized according to the spatial and energy resolution requested by the system.
2024
Istituto per la Scienza e Tecnologia dei Plasmi - ISTP
Istituto di Elettronica e di Ingegneria dell'Informazione e delle Telecomunicazioni - IEIIT
ASR - Direzione Generale
Istituto di Biologia Agro-ambientale e Forestale - IBAF - Sede Porano (attivo dal 18/11/1923 al 31/12/2021)
Inglese
19
C01013-1
C01013-12
12
https://iopscience.iop.org/article/10.1088/1748-0221/19/01/C01013
Sì, ma tipo non specificato
Plasma diagnostics - probes
Ion sources
positive ions
negative ions
electron cyclotron resonance
ECR
electron beam
EBIS
Open Access Creative Commons Attribution 4.0 licence. This work has been carried out within the framework of the EUROfusion Consortium, funded by the European Union via the Euratom Research and Training Programme (Grant Agreement No 101052200 - EUROfusion). This work has been carried out within the framework of the ITER-RFX Neutral Beam Testing Facility (NBTF) Agreement and has received funding from the ITER Organization.
13
info:eu-repo/semantics/article
262
Segalini, B.; Candeloro, V.; Poggi, C.; Berton, G.; Fasolo, D.; Franchin, L.; Laterza, B.; Magagna, M.; Trevisan, L.; Pasqualotto, R.; Serianni, G.; T...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
open
   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/20.500.14243/452983
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