The SPIDER experiment, operated at the Neutral Beam Test Facility of Consorzio RFX, Padua, hosts the prototype of the H-/D- ion source for the ITER neutral beam injectors. The maximization of the ion current extracted from the source and the minimization of the amount of co-extracted electrons are among the most relevant targets to accomplish. The Cavity Ring-Down Spectroscopy diagnostic measures the negative ion density in the source close to the plasma grid (the plasma-facing grid of the ion acceleration system), so to identify the source operational parameters that maximize the amount of negative ions which can be extracted. In this study SPIDER was operated in hydrogen and deuterium in Cs-free conditions, therefore negative ions were mostly produced by reactions in the plasma volume. This work shows how the magnetic filter field and the bias currents, present in SPIDER to limit the amount of co-extracted electrons, affect the density of negative ions available for extraction. The results indicate that the magnetic filter field in front of the acceleration system should be set between about 1.6 mT, condition that maximizes the density of available negative ions, and about 3.2 mT, condition that minimizes the ratio of electron current to ion current. The negative ion density also resulted to be maximized when the plasma grid and its surrounding bias plate was positively biased against the source body with a total current in the range 0-100 A. The paper shows also how much, in Cs-free conditions, the electric fields in the acceleration system can affect the density of negative ions in the source, close to the plasma grid apertures.
Negative ion density in the ion source SPIDER in Cs free conditions
Barbisan M.; Agnello R.; Casati G.; Pasqualotto R.; Poggi C.; Sartori E.; Spolaore M.; Serianni G.
Related products
-
PCCP. Physical chemistry chemical physics (Print) 23 (29), pp. 15475 - 15479 Year: 2021 DOI: 10.1039/d1cp01976g
Reconciling experimental and theoretical vibrational deactivation in low-energy O + N2 collisions
Hong, Q., Bartolomei, M., Esposito, F., Sun, Q., Pirani, F.
-
Nuclear fusion (Online) 61 (4), pp. 046020-1 - 046020-12 Year: 2021 DOI: 10.1088/1741-4326/abe3c7
Onset of tearing modes in plasma termination on JET: The role of temperature hollowing and edge cooling
Pucella G.; Buratti P.; Giovannozzi E.; Alessi E.; Auriemma F.; Brunetti D.; Ferreira D.R.; Baruzzo M.; Frigione D.; Garzotti L.; Joffrin E.; Lerche E.; Lomas P.J.; Nowak S.; Piron L.; Rimini F.; Sozzi C.; Van Eester D.
-
Journal of plasma physics (Print) 87 (1), pp. 825870101-1 - 825870101-20 Year: 2021 DOI: 10.1017/S0022377820001567
Local and global properties of energy transfer in models of plasma turbulence
Vasconez, Christian L.; Perrone, D.; Marino, R.; Laveder, D.; Valentini, F.; Servidio, S.; Mininni, P.; Sorriso-Valvo, L.
-
Nuclear fusion (Online) 61 (11), pp. 116068-1 - 116068-21 Year: 2021 DOI: 10.1088/1741-4326/ac21b9
First principle-based multi-channel integrated modelling in support to the design of the Divertor Tokamak Test facility
Casiraghi I.; Mantica P.; Koechl F.; Ambrosino R.; Baiocchi B.; Castaldo A.; Citrin J.; Dicorato M. ; Frassinetti L.; Mariani A.; Vincenzi P.; Agostinetti P.; Aucone L.; Balbinot L.; Ceccuzzi S.; Figini L.; Granucci G.; Innocente P.; Johnson T.; Nyström H.; Valisa M.
English
Italiano