Published 2018 | Version v1
Journal article

Regarding the optimization of O1-mode ECRH and the feasibility of EBW startup on NSTX-U

  • 1. Princeton University, NJ (United States). Dept. of Astrophysical Sciences
  • 2. Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)

Description

Recently published scenarios for fully non-inductive startup and operation on the National Spherical Torus eXperiment Upgrade (NSTX-U) [Menard J et al 2012 Nucl. Fusion 52 083015] show Electron Cyclotron Resonance Heating (ECRH) as an important component in preparing a target plasma for efficient High Harmonic Fast Wave and Neutral Beam heating. The modelling of the propagation and absorption of EC waves in the evolving plasma is required to define the most effective window of operation, and to optimize the launcher geometry for maximal heating and current drive during this window. Here in this paper, we extend a previous optimization of O1-mode ECRH on NSTX-U to account for the full time-dependent performance of the ECRH using simulations performed with TRANSP. We find that the evolution of the density profile has a prominent role in the optimization by defining the time window of operation, which in certain cases may be a more important metric to compare launcher performance than the average power absorption. This feature cannot be captured by analysis on static profiles, and should be accounted for when optimizing ECRH on any device that operates near the cutoff density. Additionally, the utility of the electron Bernstein wave (EBW) in driving current and generating closed flux surfaces in the early startup phase has been demonstrated on a number of devices. Using standalone GENRAY simulations, we find that efficient EBW current drive is possible on NSTX-U if the injection angle is shifted below the midplane and aimed towards the top half of the vacuum vessel. However, collisional damping of the EBW is projected to be significant, in some cases accounting for up to 97\% of the absorbed EBW power.

Availability note (English)

Available from https://www.osti.gov/pages/biblio/1432061; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo period

Additional details

Publishing Information

Journal Title
Plasma Physics and Controlled Fusion
Journal Volume
60
Journal Issue
6
Journal Page Range
vp.
ISSN
0741-3335

Optional Information

Contract/Grant/Project number
AC02-09CH11466
Funding organization
USDOE Office of Science - SC, Fusion Energy Sciences (FES) (SC-24) (United States)
Secondary number(s)
OSTIID--1432061