English

Assessing time-dependent temperature profile predictions using reduced transport models for high performing NSTX plasmas

Plasma Physics 2025-09-05 v1

Abstract

Time-dependent, predictive simulations were performed with the 1.5D tokamak integrated modeling code TRANSP on a large set of well-analyzed, high performing discharges from the National Spherical Torus Experiment (NSTX) in order to evaluate how well modern reduced transport models can reproduce experimentally observed temperature profiles in spherical tokamaks. Overall, it is found that simulations using the Multi-Mode Model (MMM) more consistently agree with the NSTX observations than those using the Trapped Gyro-Landau Fluid (TGLF) model, despite TGLF requiring orders of magnitude greater computational cost. When considering all examined discharges, MMM has median overpredictions of electron temperature (TeT_e) and ion temperature (TiT_i) profiles of 28% and 27%, respectively, relative to the experiment. TGLF overpredicts TeT_e by 46%, with much larger variance than MMM, and underpredicts TiT_i by 25%. As β\beta is increased across NSTX discharges, TGLF predicts lower TeT_e and significant flattening of the TiT_i profile, conflicting with NSTX observations. When using an electrostatic version of TGLF, both TeT_e and TiT_i are substantially overpredicted, underscoring the importance of electromagnetic turbulence in the high β\beta spherical tokamak regime. Additionally, calculations with neural net surrogate models for TGLF were performed outside of TRANSP with a time slice flux matching transport solver, finding better agreement with experiment than the TRANSP simulations, highlighting the impact of different transport solvers and simulation techniques. Altogether, the reasonable agreement with experiment of temperature profiles predicted by MMM motivates a more detailed examination of the sensitivities of the TRANSP simulations with MMM to different NSTX plasma regimes in a companion paper, in preparation for self-consistent, time-dependent predictive modeling of NSTX-U scenarios.

Keywords

Cite

@article{arxiv.2509.04359,
  title  = {Assessing time-dependent temperature profile predictions using reduced transport models for high performing NSTX plasmas},
  author = {J. B. Lestz and G. Avdeeva and T. F. Neiser and M. V. Gorelenkova and F. D. Halpern and S. M. Kaye and J. McClenaghan and A. Y. Pankin and K. E. Thome},
  journal= {arXiv preprint arXiv:2509.04359},
  year   = {2025}
}

Comments

30 pages, 13 figures. Submitted to Plasma Physics and Controlled Fusion