Novel dual-reflection design applied for ITER core x-ray spectrometer

Author:

Cheng Zhifeng1ORCID,Bader Amro2,De Bock Maarten3,Barnsley Robin3,Lorriere Philippe4,Pablant Novimir5ORCID,Costa Fabio6,Soeiro Joao6,Bola Ines6,O’Mullane Martin7,Yakusevich Yevgeniy8ORCID

Affiliation:

1. International Joint Research Laboratory of Magnetic Confinement Fusion and Plasma Physics, State Key Laboratory of Advanced Electromagnetic Engineering and Technology, School of Electrical and Electronic Engineering, Huazhong University of Science and Technology, Wuhan 430074, People’s Republic of China

2. Vitrociset, Via Tiburtina, 1020, 00156 Roma RM, Italy

3. ITER Organization, Route de Vinon-sur-Verdon, CS 90 046, 13067 St. Paul Lez Durance Cedex, France

4. Assystem Engineering and Operation Services SAS, 84120 Pertuis, France

5. Princeton Plasma Physics Laboratory, Princeton, New Jersey 08540, USA

6. Active Space Technologies S.A., 3045-508 Coimbra, Portugal

7. Department of Physics SUPA, University of Strathclyde, Glasgow G4 ONG, United Kingdom

8. UC Santa Barbara, Santa Barbara, California 93106, USA

Abstract

A novel dual-reflection configuration is introduced for the International Tokamak Experimental Reactor (ITER) core x-ray spectrometer to fit the allocated space where it will be placed accompanied by moving the detectors backward to reduce the incident radiation dose. The highly oriented pyrolytic graphite, which has a mosaic structure of microscopic crystallites, is chosen for the front reflector motivated by higher x-ray throughput and stronger misalignment tolerance compared to the perfect crystal reflector. In the ITER core x-ray spectrometer, a combination of several reflector-deflected Lines of Sight (LOSs) and a direct LOS is proposed for the first time named X-Ray Crystal Spectroscopy Core (XRCS-Core). The system is optimized to observe lines from externally seeded xenon and the intrinsic tungsten impurity, meeting both port integration needs and measurement requirements. Its spectral performance is simulated using an analytical-raytracing mixed code——XRSA, showing good imaging quality with a spectral resolution higher than 8000. The XRCS-Core system is thought to be applicable in various ITER scenarios through the assessment taking into account the spectrometers’ specifications and the chosen lines’ emissivity in different plasma parameters.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

Instrumentation

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