Implementing a finite-state off-normal and fault response system for disruption avoidance in tokamaks

被引:27
作者
Eidietis, N. W. [1 ]
Choi, W. [2 ]
Hahn, S. H. [3 ]
Humphreys, D. A. [1 ]
Sammuli, B. S. [1 ]
Walker, M. L. [1 ]
机构
[1] Gen Atom, POB 85608, San Diego, CA 92186 USA
[2] Columbia Univ, New York, NY 10027 USA
[3] Natl Fus Res Inst, Daejon, South Korea
关键词
disruption avoidance; integrated control; fault response; ITER; PROGRESS; LIMITS;
D O I
10.1088/1741-4326/aab62c
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
A finite-state off-normal and fault response (ONFR) system is presented that provides the supervisory logic for comprehensive disruption avoidance and machine protection in tokamaks. Robust event handling is critical for ITER and future large tokamaks, where plasma parameters will necessarily approach stability limits and many systems will operate near their engineering limits. Events can be classified as off-normal plasmas events, e.g. neoclassical tearing modes or vertical displacements events, or faults, e.g. coil power supply failures. The ONFR system presented provides four critical features of a robust event handling system: sequential responses to cascading events, event recovery, simultaneous handling of multiple events and actuator prioritization. The finite-state logic is implemented in Matlab (R)/Stateflow (R) to allow rapid development and testing in an easily understood graphical format before automated export to the real-time plasma control system code. Experimental demonstrations of the ONFR algorithm on the DIII-D and KSTAR tokamaks are presented. In the most complex demonstration, the ONFR algorithm asynchronously applies 'catch and subdue' electron cyclotron current drive (ECCD) injection scheme to suppress a virulent 2/1 neoclassical tearing mode, subsequently shuts down ECCD for machine protection when the plasma becomes over-dense, and enables rotating 3D field entrainment of the ensuing locked mode to allow a safe rampdown, all in the same discharge without user intervention. When multiple ONFR states are active simultaneously and requesting the same actuator (e.g. neutral beam injection or gyrotrons), actuator prioritization is accomplished by sorting the preassigned priority values of each active ONFR state and giving complete control of the actuator to the state with highest priority. This early experience makes evident that additional research is required to develop an improved actuator sharing protocol, as well as a methodology to minimize the number and topological complexity of states as the finite-state ONFR system is scaled to a large, highly constrained device like ITER.
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页数:9
相关论文
共 27 条
[11]   Neoclassical tearing modes and their control [J].
La Haye, R. J. .
PHYSICS OF PLASMAS, 2006, 13 (05)
[12]   Disruptions in ITER and strategies for their control and mitigation [J].
Lehnen, M. ;
Aleynikova, K. ;
Aleynikov, P. B. ;
Campbell, D. J. ;
Drewelow, P. ;
Eidietis, N. W. ;
Gasparyan, Yu. ;
Granetz, R. S. ;
Gribov, Y. ;
Hartmann, N. ;
Hollmann, E. M. ;
Izzo, V. A. ;
Jachmich, S. ;
Kim, S. -H. ;
Kocan, M. ;
Koslowski, H. R. ;
Kovalenko, D. ;
Kruezi, U. ;
Loarte, A. ;
Maruyama, S. ;
Matthews, G. F. ;
Parks, P. B. ;
Pautasso, G. ;
Pitts, R. A. ;
Reux, C. ;
Riccardo, V. ;
Roccella, R. ;
Snipes, J. A. ;
Thornton, A. J. ;
de Vries, P. C. .
JOURNAL OF NUCLEAR MATERIALS, 2015, 463 :39-48
[13]   EXPERIMENTAL-STUDY OF THE VERTICAL STABILITY OF HIGH DECAY INDEX PLASMAS IN THE DIII-D TOKAMAK [J].
LISTER, JB ;
LAZARUS, EA ;
KELLMAN, AG ;
MORET, JM ;
FERRON, JR ;
HELTON, FJ ;
LAO, LL ;
LEUER, JA ;
STRAIT, EJ ;
TAYLOR, TS ;
TURNBULL, AD .
NUCLEAR FUSION, 1990, 30 (11) :2349-2366
[14]   Actuator allocation for integrated control in tokamaks: architectural design and a mixed-integer programming algorithm [J].
Maljaars, E. ;
Felici, F. .
FUSION ENGINEERING AND DESIGN, 2017, 122 :94-112
[15]   Active control of MHD instabilities by ECCD in ASDEX upgrade [J].
Maraschek, M ;
Gantenbein, G ;
Goodman, TP ;
Günter, S ;
Howell, DF ;
Leuterer, F ;
Mück, A ;
Sauter, O ;
Zohm, H .
NUCLEAR FUSION, 2005, 45 (11) :1369-1376
[16]   First results from the MAST digital plasma control system [J].
McArdle, GJ ;
Storrs, J .
FUSION ENGINEERING AND DESIGN, 2004, 71 (1-4) :59-64
[17]   Current status of the upgraded DIII-D real-time digital plasma control system [J].
Penaflor, BG ;
Ferron, JR ;
Johnson, RD ;
Piglowski, DA .
FUSION ENGINEERING AND DESIGN, 2004, 71 (1-4) :47-52
[18]  
Perkins FW, 1999, NUCL FUSION, V39, P2137, DOI 10.1088/0029-5515/39/12/301
[19]   Actuator management for ECRH at ASDEX Upgrade [J].
Rapson, Christopher J. ;
Reich, Matthias ;
Stober, Joerg ;
Treutterer, Wolfgang .
FUSION ENGINEERING AND DESIGN, 2015, 96-97 :694-697
[20]   Beta limits in long-pulse tokamak discharges [J].
Sauter, O ;
LaHaye, RJ ;
Chang, Z ;
Gates, DA ;
Kamada, Y ;
Zohm, H ;
Bondeson, A ;
Boucher, D ;
Callen, JD ;
Chu, MS ;
Gianakon, TA ;
Gruber, O ;
Harvey, RW ;
Hegna, CC ;
Lao, LL ;
Monticello, DA ;
Perkins, F ;
Pletzer, A ;
Reiman, AH ;
Rosenbluth, M ;
Strait, EJ ;
Taylor, TS ;
Turnbull, AD ;
Waelbroeck, F ;
Wesley, JC ;
Wilson, HR ;
Yoshino, R .
PHYSICS OF PLASMAS, 1997, 4 (05) :1654-1664