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Identifying microturbulence regimes in a TCV discharge making use of physical constraints on particle and heat fluxes

  • A. Mariani
  • , S. Brunner
  • , J. Dominski
  • , A. Merle
  • , G. Merlo
  • , O. Sauter
  • , T. Görler
  • , F. Jenko
  • , D. Told

Research output: Contribution to journalArticlepeer-review

Abstract

Reducing the uncertainty on physical input parameters derived from experimental measurements is essential towards improving the reliability of gyrokinetic turbulence simulations. This can be achieved by introducing physical constraints. Amongst them, the zero particle flux condition is considered here. A first attempt is also made to match as well the experimental ion/electron heat flux ratio. This procedure is applied to the analysis of a particular Tokamak à Configuration Variable discharge. A detailed reconstruction of the zero particle flux hyper-surface in the multi-dimensional physical parameter space at fixed time of the discharge is presented, including the effect of carbon as the main impurity. Both collisionless and collisional regimes are considered. Hyper-surface points within the experimental error bars are found. The analysis is done performing gyrokinetic simulations with the local version of the GENE code, computing the fluxes with a Quasi-Linear (QL) model and validating the QL results with non-linear simulations in a subset of cases.

Original languageEnglish (US)
Article number012313
JournalPhysics of Plasmas
Volume25
Issue number1
DOIs
StatePublished - Jan 1 2018

All Science Journal Classification (ASJC) codes

  • Condensed Matter Physics

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