Enhancement of negative ion sources for production of large ion beams is a very active research field nowadays, driven from demand of plasma heating in nuclear fusion devices and accelerator applications. As a versatile test bench, the ion source NIO1 (Negative Ion Optimization 1) is being commissioned by Consorzio RFX and INFN. The nominal beam current of 135 mA at -60 kV is divided into 9 beamlets, with multiaperture extraction electrodes. The plasma is sustained by a 2 MHz radiofrequency power supply, with a standard matching box. A High Voltage Deck (HVD) placed inside the lead shielding surrounding NIO1 contains the radiofrequency generator, the gas control, electronics and power supplies for the ion source. An autonomous closed circuit water cooling system was installed for the whole system, with a branch towards the HVD, using carefully optimized helical tubing. Insulation transformer is installed in a nearby box. Tests of several magnetic configurations can be performed. Status of experiments, measured spectra and plasma luminosity are described. Upgrades of magnetic filter, beam calorimeter and extraction grid and related theoretical issues are reviewed.

Development of Versatile Multiaperture Negative Ion Sources

Serianni G;Antoni V;Pasqualotto R;Recchia M;Agostinetti P;Barbisan M;Cervaro V;Degli Agostini F;Rossetto F;
2015

Abstract

Enhancement of negative ion sources for production of large ion beams is a very active research field nowadays, driven from demand of plasma heating in nuclear fusion devices and accelerator applications. As a versatile test bench, the ion source NIO1 (Negative Ion Optimization 1) is being commissioned by Consorzio RFX and INFN. The nominal beam current of 135 mA at -60 kV is divided into 9 beamlets, with multiaperture extraction electrodes. The plasma is sustained by a 2 MHz radiofrequency power supply, with a standard matching box. A High Voltage Deck (HVD) placed inside the lead shielding surrounding NIO1 contains the radiofrequency generator, the gas control, electronics and power supplies for the ion source. An autonomous closed circuit water cooling system was installed for the whole system, with a branch towards the HVD, using carefully optimized helical tubing. Insulation transformer is installed in a nearby box. Tests of several magnetic configurations can be performed. Status of experiments, measured spectra and plasma luminosity are described. Upgrades of magnetic filter, beam calorimeter and extraction grid and related theoretical issues are reviewed.
2015
Istituto gas ionizzati - IGI - Sede Padova
Inglese
FOURTH INTERNATIONAL SYMPOSIUM ON NEGATIVE IONS, BEAMS AND SOURCES (NIBS 2014)
4th International Symposium on Negative Ions, Beams and Sources (NIBS)
1655
10
978-0-7354-1297-2
http://scitation.aip.org/content/aip/proceeding/aipcp/10.1063/1.4916448
Sì, ma tipo non specificato
6-10 October 2014
Garching, Germany
Ion beam analysis
beam optics
Article Number: 040006 / E-ISSN: 1551-7616 / Financial support: Fondazione Cassa di Risparmio di Padova e Rovigo, INFN (Technological Research and Energy Research groups) and Fusion for Energy.
25
restricted
Cavenago, M; Serianni, G; Antoni, V; Bigi, M; De Muri, M; Pasqualotto, R; Recchia, M; Veltri, P; Agostinetti, P; Barbisan, M; Baseggio, L; Cervaro, V;...espandi
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
   EU Fusion for ITER Applications
   EUFORIA
   FP7
   211804
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/311101
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