2D core ion temperature and impurity density measurements with Coherence Imaging Charge Exchange Recombination Spectroscopy (CICERS) at Wendelstein 7-X (invited)

Author:

Lopez-Cansino R.1ORCID,Perseo V.2ORCID,Viezzer E.1,Ford O. P.2ORCID,Kriete M.3ORCID,Romba T.2ORCID,Rueda-Rueda J.1ORCID,Poloskei P. Z.2ORCID,Reimold F.2ORCID,

Affiliation:

1. Department of Atomic, Molecular and Nuclear Physics, University of Seville 1 , Seville, Spain

2. Max-Planck-Institut für Plasmaphysik 2 , Greifswald, Germany

3. Auburn University 3 , Auburn, Alabama 36849, USA

Abstract

Coherence Imaging Charge Exchange Recombination Spectroscopy (CICERS) is an imaging diagnostic installed in Wendelstein 7-X from which 2D maps of ion temperature (Ti) and impurity density (nZ) are obtained. The improved spatial resolution and coverage, as compared to standard Charge eXchange Recombination Spectroscopy (CXRS), with which these parameters can be assessed, come at the expense of spectral resolution, requiring the development of new strategies to isolate the active charge exchange contribution from passive and Bremsstrahlung radiation. In this work, a new approach based on the modeling of background radiation is presented and applied to the derivation of 2D Ti maps. These are compared to the Ti profiles derived from standard CXRS, which found excellent agreement up to the edge (ρ > 0.8). The CICERS view is implemented in the pyFIDAsim code, which is used to provide further insight into the spatial localization of the radiation as measured by the diagnostic. Moreover, an absolute intensity calibration is carried out, and, coupled with pyFIDAsim, the first 2D nC maps are obtained and validated against CXRS data.

Funder

HORIZON EUROPE European Research Council

Ministerio de Ciencia e Innovación

EUROfusion

Publisher

AIP Publishing

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