Design and experimental demonstration of feedback adaptive RMP ELM controller toward complete long pulse ELM suppression on KSTAR

Author:

Shousha R.12ORCID,Kim S. K.12ORCID,Erickson K. G.2,Hahn S. H.3ORCID,Nelson A. O.4ORCID,Yang S. M.2ORCID,Park J.-K.2ORCID,Wai J.12ORCID,Jeon Y. M.3ORCID,Lee J. H.3,Jang J.3ORCID,Seo D.3ORCID,Kolemen E.12ORCID

Affiliation:

1. Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, New Jersey 08544, USA

2. Princeton Plasma Physics Laboratory (PPPL), Princeton, New Jersey 08543, USA

3. Korea Institute of Fusion Energy (KFE), Daejeon 34133, Republic of Korea

4. Department of Applied Physics and Applied Mathematics, Columbia University, New York, New York 10027, USA

Abstract

Operation of a fusion power plant requires robust edge localized mode (ELM) suppression simultaneously with high plasma performance. In this paper, we describe a novel feedback adaptive resonant magnetic perturbation (RMP) ELM controller designed to address this problem by achieving optimized ELM suppression through the advanced application of 3D RMPs. From real-time [Formula: see text] data, the controller is able to achieve robust ELM suppression while simultaneously minimizing the applied RMP in order to enhance plasma performance. In real-time, the instantaneous ELM-frequency is analyzed with an adaptive feedback algorithm to determine amplitudes and phases of RMP coil currents that will maximize plasma performance while maintaining ELM suppression. When applied through the KSTAR plasma control system in several experiments using n = 1 RMPs, robust ELM suppression is achieved and sustained in feedback while reducing the RMP strength to [Formula: see text] of its initial value. Minimization of the RMP strength in this manner not only allows for operation of longer discharges due to a decrease in flux consumption but also allows for a strong recovery of up to [Formula: see text] of βN throughout the ELM-free period.

Funder

Princeton Plasma Physics Laboratory

Korea Institute of Fusion Energy Government Funds

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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