scholarly journals Strike point splitting induced by the application of magnetic perturbations on MAST

2013 ◽  
Vol 438 ◽  
pp. S326-S329 ◽  
Author(s):  
P. Cahyna ◽  
M. Peterka ◽  
A. Kirk ◽  
A. Thornton ◽  
J. Harrison ◽  
...  
2011 ◽  
Vol 415 (1) ◽  
pp. S914-S917 ◽  
Author(s):  
E. Nardon ◽  
P. Cahyna ◽  
S. Devaux ◽  
A. Kirk ◽  
A. Alfier ◽  
...  

2021 ◽  
Vol 87 (2) ◽  
Author(s):  
P. Svensson ◽  
O. Embreus ◽  
S. L. Newton ◽  
K. Särkimäki ◽  
O. Vallhagen ◽  
...  

The electron runaway phenomenon in plasmas depends sensitively on the momentum- space dynamics. However, efficient simulation of the global evolution of systems involving runaway electrons typically requires a reduced fluid description. This is needed, for example, in the design of essential runaway mitigation methods for tokamaks. In this paper, we present a method to include the effect of momentum-dependent spatial transport in the runaway avalanche growth rate. We quantify the reduction of the growth rate in the presence of electron diffusion in stochastic magnetic fields and show that the spatial transport can raise the effective critical electric field. Using a perturbative approach, we derive a set of equations that allows treatment of the effect of spatial transport on runaway dynamics in the presence of radial variation in plasma parameters. This is then used to demonstrate the effect of spatial transport in current quench simulations for ITER-like plasmas with massive material injection. We find that in scenarios with sufficiently slow current quench, owing to moderate impurity and deuterium injection, the presence of magnetic perturbations reduces the final runaway current considerably. Perturbations localised at the edge are not effective in suppressing the runaways, unless the runaway generation is off-axis, in which case they may lead to formation of strong current sheets at the interface of the confined and perturbed regions.


2015 ◽  
Vol 57 (10) ◽  
pp. 104007 ◽  
Author(s):  
Hai Jin ◽  
Qiming Hu ◽  
Nengchao Wang ◽  
Bo Rao ◽  
Yonghua Ding ◽  
...  

2021 ◽  
Author(s):  
SangKyeun Kim ◽  
Ricardo Shousha ◽  
Sang-Hee Hahn ◽  
Andrew Oakleigh Nelson ◽  
Josiah Wai ◽  
...  

Abstract Mitigation of deleterious heat flux from edge-localized modes (ELMs) on fusion reactors is often attempted with 3D perturbations of the confining magnetic fields. However, the established technique of resonant magnetic perturbations (RMPs) also degrades plasma performance, complicating implementation on future fusion reactors. In this paper, we introduce an adaptive real-time control scheme on the KSTAR tokamak as a viable approach to achieve an ELM-free state and simultaneously recover high-confinement (βN~1.91, βp~1.53, and H98~0.9), demonstrating successful handling of a volatile complex system through adaptive measures. We show that, by exploiting a salient hysteresis process to adaptively minimize the RMP strength, stable ELM suppression can be achieved while actively encouraging confinement recovery. This is made possible by a self-organized transport response in the plasma edge which reinforces the confinement improvement through a widening of the ion temperature pedestal and promotes control stability, in contrast to the deteriorating effect on performance observed in standard RMP experiments. These results establish the real-time approach as an up-and-coming solution towards an optimized ELM-free state, which is an important step for the operation of ITER and reactor-grade tokamak plasmas.


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