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Modelling and experiment to stabilize disruptive tearing modes in the ITER baseline scenario in DIII-D

Journal Article · · Nuclear Fusion
Abstract

The achievement of high gain, stationary conditions in a tokamak scenario aimed at producing fusion energy in the ITER Project is crucial to the demonstration that this form of energy can be used in future reactors to provide cheap and clean energy globally. Disruptions are a challenge for the fusion energy field, in particular for the ‘ITER Baseline Scenario’ (IBS), as reproduced in the DIII-D tokamak. This work shows that a solution has been found for the m = 2/ n = 1 tearing modes that have consistently caused disruptions in the IBS: stable operation down to zero input torque was achieved by modifying the current density profile at the beginning of the pressure flattop and the ELM character later in the discharges, guided by previous results showing that the most likely cause of these instabilities is the current density profile. The coupling between sawteeth, n>2 modes and the 2/1 TMs is shown to not be statistically significant, nor the leading origin for the evolution towards instability. Ideal and resistive MHD modeling provide positive verification that a steeper ‘well’ in the region of the q = 2 rational surface leads to worse ideal stability, higher tearing index Δ’ and lower threshold Δ’ c for resistive instabilities, consistent with the experimental results. This provides confidence that the methods used in this work can be extrapolated to other devices and applied to avoid disruptions in ITER and pulsed fusion devices worldwide.

Research Organization:
General Atomics, San Diego, CA (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES); USDOE Office of Science (SC), Fusion Energy Sciences (FES)
Grant/Contract Number:
FC02-04ER54698; FG02-04ER54761
OSTI ID:
2371896
Alternate ID(s):
OSTI ID: 2397341
Journal Information:
Nuclear Fusion, Journal Name: Nuclear Fusion Journal Issue: 7 Vol. 64; ISSN 0029-5515
Publisher:
IOP PublishingCopyright Statement
Country of Publication:
IAEA
Language:
English

References (14)

Simultaneous feedback control of plasma rotation and stored energy on the DIII-D tokamak journal October 2007
Tearing mode in the cylindrical tokamak journal January 1973
High performance stationary discharges in the DIII-D tokamak journal May 2004
Resistive stability of 2∕1 modes near 1∕1 resonance journal May 2007
Resistive instabilities in general toroidal plasma configurations journal January 1975
Resistive instabilities in a tokamak journal January 1976
Chapter 1: Overview and summary journal June 2007
Impact of the current profile evolution on tearing stability of ITER demonstration discharges in DIII-D journal August 2010
Development of advanced inductive scenarios for ITER journal December 2013
Long-pulse stability limits of the ITER baseline scenario journal January 2015
Macroscopic trends of linear tearing stability in cylindrical current profiles journal June 2024
The causes of the disruptive tearing instabilities of the ITER Baseline Scenario in DIII-D journal September 2018
Transport Phenomena in a Completely Ionized Gas journal March 1953
Neoclassical Tearing Mode Seeding by Nonlinear Three-Wave Interactions in Tokamaks journal July 2021

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