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Title: Coupled ion temperature gradient and trapped electron mode to electron temperature gradient mode gyrokinetic simulations

Journal Article · · Physics of Plasmas
DOI:https://doi.org/10.1063/1.2436851· OSTI ID:1564633
 [1];  [1];  [2]
  1. General Atomics, San Diego, CA (United States)
  2. General Atomics, San Diego, CA (United States); Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States). National Center for Computer Science

Electron temperature gradient (ETG) transport is conventionally defined as the electron energy transport at high wave number (high-k) where ions are adiabatic and there can be no ion energy or plasma transport. Previous gyrokinetic simulations have assumed adiabatic ions (ETG-ai) and work on the small electron gyroradius scale. However such ETG-ai simulations with trapped electrons often do not have well behaved nonlinear saturation unless fully kinetic ions (ki) and proper ion scale zonal flow modes are included. Electron energy transport is separated into ETG-ki at high-k and ion temperature gradient-trapped electron mode (ITG/TEM) at low-k. Expensive (more computer-intensive), high-resolution, large-ion-scale flux-tube simulations coupling ITG/TEM and ETG-ki turbulence are presented. These require a high effective Reynolds number R ≡ [k(max)/k(min)]2 = μ2, where μ=[ρsi/ρsi] is the ratio of ion to electron gyroradii. Compute times scale faster than μ3. By comparing the coupled expensive simulations with (1) much cheaper (less compute-intensive), uncoupled, high-resolution, small, flux-tube ETG-ki and with (2) uncoupled low-resolution, large, flux-tube ITG/TEM simulations, and also by artificially turning “off” the low-k or high-k drives, it appears that ITG/TEM and ETG-ki transport are not strongly coupled so long as ETG-ki can access some nonadiabatic ion scale zonal flows and both high-k and low-k are linearly unstable. However expensive coupled simulations are required for physically accurate k-spectra of the transport and turbulence. Simulations with μ ≥ 30 appear to represent the physical range μ > 40. ETG-ki transport measured in ion gyro-Bohm units is weakly dependent on μ. For the mid-radius core tokamak plasma parameters studied, ETG-ki is about 10% of the electron energy transport, which in turn is about 30% of the total energy transport (with negligible E × B shear). However at large E × B shear sufficient to quench the low-k ITG/TEM transport, the high-k tail of the ETG-ki transport survives. In conclusion, decreasing the trapping to minimize the TEM opens a stability gap between ITG and ETG. High-k ETG transport driven by low-k ITG instability in an ETG linearly stable plasma is demonstrated.

Research Organization:
Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States). Oak Ridge Leadership Computing Facility (OLCF)
Sponsoring Organization:
USDOE Office of Science (SC)
Grant/Contract Number:
AC05-00OR22725
OSTI ID:
1564633
Journal Information:
Physics of Plasmas, Vol. 14, Issue 5; ISSN 1070-664X
Publisher:
American Institute of Physics (AIP)Copyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 78 works
Citation information provided by
Web of Science

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Cited By (13)

A theory-based transport model with comprehensive physics journal May 2007
Gyrokinetic microinstabilities in ASDEX Upgrade edge plasmas journal October 2008
Resolving electron scale turbulence in spherical tokamaks with flow shear journal February 2011
Multispecies density peaking in gyrokinetic turbulence simulations of low collisionality Alcator C-Mod plasmas journal June 2015
Validation metrics for turbulent plasma transport journal June 2016
The role of zonal flows in the saturation of multi-scale gyrokinetic turbulence journal June 2016
Verification of GENE and GYRO with L-mode and I-mode plasmas in Alcator C-Mod journal April 2018
Gyrokinetic GENE simulations of DIII-D near-edge L-mode plasmas journal September 2019
Validating a quasi-linear transport model versus nonlinear simulations journal July 2009
Feasibility study for a correlation electron cyclotron emission turbulence diagnostic based on nonlinear gyrokinetic simulations journal September 2011
A scale-separated approach for studying coupled ion and electron scale turbulence journal May 2019
Gyrokinetic GENE simulations of DIII-D near-edge L-mode plasmas text January 2018
A Scale-Separated Approach for Studying Coupled Ion and Electron Scale Turbulence text January 2019

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