The neutral beam injector, an additional heating system for the ITER project, will be optimized in the NBI test facility under construction in Padova. The facility includes the SPIDER ion source representing the full size prototype for the production of negative ions, based on RF plasma with expected beam 100kV energy and 50A current. The source will be equipped with a system of 84 electrostatic probes for the investigation of the homogeneity of plasma parameters, such as plasma density, electron temperature, and plasma potential and possibly of the Electron Energy Distribution Function. Measurements are performed in the extraction region of the ion source, where most of the extracted negative ions are produced. The system consists of 2D arrays of different sensors, covering the Plasma Grid (PG) surface and the Bias Plate (BP), which are the components facing the plasma in the extraction region. The probe system design accounts for the constraints related to the need of embedding the sensors within the PG and BP. It has been carried out with the aim of providing sensors easy maintenance and enough robustness to withstand the experimental operation of SPIDER. A special machining of the insulating part has been adopted in order to avoid sensor short circuit due to deposition of metals such as caesium or copper on the BP and PG surfaces during the operation of the SPIDER source. Given the RF plasma, a particular attention is paid to the RF conditioning of the current collected by the probes in order to minimize the spurious effects on the voltage-current characteristic of the sensors. The system is now installed on the SPIDER grids, commissioned and its scientific exploitation is presently ongoing. In this contribution, the overall system description and status is provided, including the in-vessel and ex-vessel parts, following the path from the sensors up to the conditioning electronics and the acquisition system. Selected examples of achieved measurements during the SPIDER experimental campaigns are provided.
Electrostatic Probe System for the SPIDER Experiment
Spolaore M.; Brombin M.; Cavazzana R.; Fadone M.; Pasqualotto R.; Poggi C.; Pomaro N.; Serianni G.; Taliercio C.
Related products
-
High-Temperature Plasma Diagnostics Conference 2022, HTPD 22, , Rochester, New York State , May 15-19, 2022 Year: 2022
A high resolution neutron spectroscopic camera for SPARC based on JET DT experience
Tardocchi M.; Rebai M.; Rigamonti D.; Tinguely R.A.; Dal Molin A.; De Marchi E.; Ghani Z.; Giacomelli L.; Girolami M.; Grosso G.; Kushoro M.; Mastellone M.; Muraro A.; Nocente M.; Perelli Cippo E.; Serpente V.; Trotta A.; Trucchi D.M.; Gorini G.; JET contributors
-
14th International Symposium on Fusion Nuclear Technology (ISFNT 14), , Budapest, Hungary , 22-27 September 2019 Year: 2019
Design of the RFX-mod2 First Wall
Dalla Palma M.; Berton G.; Canton A.; Cavazzana R.; Gambetta G.; Innocente P.; Peruzzo S.; Siragusa M.; Spagnolo S.; Spolaore M.
-
31st Symposium on Fusion Technology (SOFT 2020), , Virtual Conference , 20-25 September 2020 Year: 2020
Improvements in the SPIDER RF system
Maistrello Alberto; Recchia Mauro; Zamengo Andrea; Bernardi Marco; Chitarin Giuseppe; Dan Mattia; Gasparini Ferdinando; Jain Palak; Bigi Marco; Gaio Elena; Marcuzzi Diego; Pavei Mauro; Zanotto Loris
-
AIV XXV Conference, , Napoli, Italy , 10-12 May 2022 Year: 2022
Metrology activities for the Installation and Test of the MITICA Beam LineComponents Box and survey of the SPIDER Beam Source accelerator
Barzon A.; Degli Agostini F.; Fasolo D.; Manfrin S.; Tollin M.; Rossetto F.
English
Italiano