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X-ray imaging crystal spectroscopy for use in plasma transport research

  • M. L. Reinke
  • , Y. A. Podpaly
  • , M. Bitter
  • , I. H. Hutchinson
  • , J. E. Rice
  • , L. Delgado-Aparicio
  • , C. Gao
  • , M. Greenwald
  • , K. Hill
  • , N. T. Howard
  • , A. Hubbard
  • , J. W. Hughes
  • , N. Pablant
  • , A. E. White
  • , S. M. Wolfe

Research output: Contribution to journalArticlepeer-review

Abstract

This research describes advancements in the spectral analysis and error propagation techniques associated with x-ray imaging crystal spectroscopy (XICS) that have enabled this diagnostic to be used to accurately constrain particle, momentum, and heat transport studies in a tokamak for the first time. Doppler tomography techniques have been extended to include propagation of statistical uncertainty due to photon noise, the effect of non-uniform instrumental broadening as well as flux surface variations in impurity density. These methods have been deployed as a suite of modeling and analysis tools, written in interactive data language (IDL) and designed for general use on tokamaks. Its application to the Alcator C-Mod XICS is discussed, along with novel spectral and spatial calibration techniques. Example ion temperature and radial electric field profiles from recent I-mode plasmas are shown, and the impact of poloidally asymmetric impurity density and natural line broadening is discussed in the context of the planned ITER x-ray crystal spectrometer.

Original languageEnglish (US)
Article number113504
JournalReview of Scientific Instruments
Volume83
Issue number11
DOIs
StatePublished - Nov 2012

All Science Journal Classification (ASJC) codes

  • Instrumentation

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