Disruptive neoclassical tearing mode seeding in DIII-D with implications for ITER
New studies identify the critical parameters and physics governing disruptive neoclassical tearing mode (NTM) onset. An m / n = 2/1 mode in DIII-D that begins to grow robustly after a seeding event (edge localized mode ELM or sawtooth precursor and crash) causes the mode rotation to drop close to th...
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Veröffentlicht in: | Nuclear fusion 2022-05, Vol.62 (5), p.56017 |
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Hauptverfasser: | , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | New studies identify the critical parameters and physics governing disruptive neoclassical tearing mode (NTM) onset. An
m
/
n
= 2/1 mode in DIII-D that begins to grow robustly after a seeding event (edge localized mode ELM or sawtooth precursor and crash) causes the mode rotation to drop close to the plasma’s
E
r
= 0 rest frame; this condition opens the stabilizing ion-polarization current ‘gate’ and destabilizes an otherwise marginally stable NTM. Our new experimental and theoretical insights and novel toroidal theory-based modeling are benchmarked and scalable to ITER and other future experiments. The nominal ITER rotation at
q
= 2 is found to be stabilizing (‘gate closed’) except for MHD-induced transients that could ‘open the gate’. Extrapolating from the DIII-D ITER baseline scenario (IBS) discharges, MHD transients are much more likely to destabilize problematic robustly growing 2/1 NTMs in ITER; this makes predictions of seeding and control of both ELMs and sawteeth imperative for more than just minimizing divertor pulsed-heat loading. |
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ISSN: | 0029-5515 1741-4326 |
DOI: | 10.1088/1741-4326/ac351f |