Resistive wall tearing mode disruptions in DIII-D and ITER tokamaks

Author:

Strauss H. R.1ORCID,Lyons B. C.2ORCID,Knolker M.2ORCID

Affiliation:

1. HRS Fusion, West Orange, New Jersey 07052, USA

2. General Atomics, San Diego, California 92121, USA

Abstract

Disruptions are a serious problem in tokamaks, in which thermal and magnetic energy confinement is lost. This paper uses data from the DIII-D experiment, theory, and simulations to demonstrate that resistive wall tearing modes (RWTMs) produce the thermal quench (TQ) in a typical locked mode shot. Analysis of the linear RWTM dispersion relation shows the parameter dependence of the growth rate, particularly on the resistive wall time. Linear simulations of the locked mode equilibrium show that it is unstable with a resistive wall and stable with an ideally conducting wall. Nonlinear simulations demonstrate that the RWTM grows to sufficient amplitude to cause a complete thermal quench. The RWTM growth time is proportional to the thermal quench time. The nonlinearly saturated RWTM magnetic perturbation amplitude agrees with experimental measurements. The onset condition is that the q = 2 rational surface is sufficiently close to the resistive wall. Collectively, this identifies the RWTM as the cause of the TQ. In ITER, RWTMs will produce long TQ times compared to present-day experiments. ITER disruptions may be significantly more benign than previously predicted.

Funder

Fusion Energy Sciences

Princeton Plasma Physics Laboratory

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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