We present a fully developed, small-size multi-diagnostic probe head for the characterization of near-wall (scrape-off layer and divertor region) electric and magnetic plasma properties in Medium-Size Tokamaks (MST). The probe head can be mounted on a number of reciprocating probe manipulators of MST devices. It contains one high electron emissive probe (EEP) [1, 2], two cold Langmuir probes (CLP), two retarding field analyzers (RFA) and two miniaturized 3-axial magnetic pick-up coils (MPC) for magnetic field fluctuations measurements. The EEP and the two CLP are placed on almost the same radial position (shadowing effects considered) making various Langmuir probe measurement techniques (e.g. fast electron temperature measurements) applicable. The CLPs can further simply be replaced by two pins, geometrically parallel to the magnetic field, capable of determining the electron energy distribution function (EEDF) in the plasma [3]. Combining these measurements with the ion energy distribution function (IEDF) of the plasma, gained from the RFAs, the real local heat flux can be determined [4]. Here we present preliminary measurement results obtained in the linear magnetic device located at the Jozef Stefan Institute, Slovenia. Soon the probe head will be integrated into the Tokamak a Configuration Variable (TCV) for first scrape-off layer measurements.

Multi-diagnostic probe head for near-wall electric and magnetic measurements in medium-size tokamaks

Vianello N;Spolaore M;
2017

Abstract

We present a fully developed, small-size multi-diagnostic probe head for the characterization of near-wall (scrape-off layer and divertor region) electric and magnetic plasma properties in Medium-Size Tokamaks (MST). The probe head can be mounted on a number of reciprocating probe manipulators of MST devices. It contains one high electron emissive probe (EEP) [1, 2], two cold Langmuir probes (CLP), two retarding field analyzers (RFA) and two miniaturized 3-axial magnetic pick-up coils (MPC) for magnetic field fluctuations measurements. The EEP and the two CLP are placed on almost the same radial position (shadowing effects considered) making various Langmuir probe measurement techniques (e.g. fast electron temperature measurements) applicable. The CLPs can further simply be replaced by two pins, geometrically parallel to the magnetic field, capable of determining the electron energy distribution function (EEDF) in the plasma [3]. Combining these measurements with the ion energy distribution function (IEDF) of the plasma, gained from the RFAs, the real local heat flux can be determined [4]. Here we present preliminary measurement results obtained in the linear magnetic device located at the Jozef Stefan Institute, Slovenia. Soon the probe head will be integrated into the Tokamak a Configuration Variable (TCV) for first scrape-off layer measurements.
2017
Istituto gas ionizzati - IGI - Sede Padova
Inglese
44th European Physical Society Conference on Plasma Physics - EPS 2017
http://ocs.ciemat.es/EPS2017ABS/pdf/P4.105.pdf
26-30 June 2017
Belfast, Northern Ireland
Medium-Size Tokamaks
MST
ID: P4.105
14
info:eu-repo/semantics/conferenceObject
none
274
04 Contributo in convegno::04.02 Abstract in Atti di convegno
Schneider, Bs; Tsui, Ck; Vianello, N; Spolaore, M; Boedo, J; Naulin, V; Rasmussen, Jj; Staerz, R; Kovacic, J; Gyergyek, T; Costea, S; Ionita, C; Schri...espandi
   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/20.500.14243/339877
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