Baseline Architecture of ITER Control System

被引:5
|
作者
Wallander, A. [1 ]
Di Maio, F. [1 ]
Journeaux, J. -Y. [1 ]
Klotz, W. -D. [1 ]
Makijarvi, P. [1 ]
Yonekawa, I. [1 ]
机构
[1] ITER Org, F-13067 St Paul Les Durance, France
关键词
Architecture; control system; EPICS; ITER;
D O I
10.1109/TNS.2011.2154341
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The control system of ITER consists of thousands of computers processing hundreds of thousands of signals. The control system, being the primary tool for operating the machine, shall integrate, control and coordinate all these computers and signals and allow a limited number of staff to operate the machine from a central location with minimum human intervention. The primary functions of the ITER control system are plant control, supervision and coordination, both during experimental pulses and 24/7 continuous operation. The former can be split in three phases; preparation of the experiment by defining all parameters; executing the experiment including distributed feed-back control and finally collecting, archiving, analyzing and presenting all data produced by the experiment. We define the control system as a set of hardware and software components with well defined characteristics. The architecture addresses the organization of these components and their relationship to each other. We distinguish between physical and functional architecture, where the former defines the physical connections and the latter the data flow between components. In this paper, we identify the ITER control system based on the plant breakdown structure. Then, the control system is partitioned into a workable set of bounded subsystems. This partition considers at the same time the completeness and the integration of the subsystems. The components making up subsystems are identified and defined, a naming convention is introduced and the physical networks defined. Special attention is given to timing and real-time communication for distributed control. Finally we discuss baseline technologies for implementing the proposed architecture based on analysis, market surveys, prototyping and benchmarking carried out during the last year.
引用
收藏
页码:1433 / 1438
页数:6
相关论文
共 50 条
  • [1] An integrated architecture for the ITER RH control system
    Hamilton, David Thomas
    Tesini, Alessandro
    FUSION ENGINEERING AND DESIGN, 2012, 87 (09) : 1611 - 1615
  • [2] Towards a preliminary design of the ITER plasma control system architecture
    Treutterer, W.
    Rapson, C. J.
    Raupp, G.
    Snipes, J.
    de Vries, P.
    Winter, A.
    Humphreys, D. A.
    Walker, M.
    de Tommasi, G.
    Cinque, M.
    Bremond, S.
    Moreau, P.
    Nouailletas, R.
    Felton, R.
    FUSION ENGINEERING AND DESIGN, 2017, 115 : 33 - 38
  • [3] A REVISED ITER EC SYSTEM BASELINE DESIGN PROPOSAL
    Henderson, M. A.
    Beckett, B.
    Darbos, C.
    Kobayashi, N.
    Saibene, G.
    Albajar, F.
    Bonicelli, T.
    Alberti, S.
    Chavan, R.
    Fasel, D.
    Goodman, T. P.
    Pagonakis, I. Gr
    Sauter, O.
    Cirant, S.
    Farina, D.
    Ramponi, G.
    Heidinger, R.
    Piosczyk, B.
    Thumm, M.
    Rao, S. L.
    Kajiwara, K.
    Sakamoto, K.
    Takahashi, K.
    Denisov, G.
    Bigelow, T.
    Rasmussen, D.
    ELECTRON CYCLOTRON EMISSION AND ELECTRON CYCLOTRON RESONANCE HEATING, 2009, : 458 - +
  • [4] ITER ECH&CD Control System: architecture, interfaces and status of development.
    Carannante, Giuseppe
    Cavinato, Mario
    Cindric, Katarina
    De Vries, Peter
    Felici, Federico
    Ferrari, Martino Giordano
    Ferro, Giuseppe
    Henderson, Mark
    Neto, Andre
    Preynas, Melanie
    Reich, Matthias
    Sartori, Filippo
    Zabeo, Luca
    21ST JOINT WORKSHOP ON ELECTRON CYCLOTRON EMISSION AND ELECTRON CYCLOTRON RESONANCE HEATING, EC21, 2023, 277
  • [5] Progress in Design Integration and Configuration Control of the ITER machine Baseline
    Kuehn, I.
    Cordier, J-J.
    Chiocchio, S.
    Levesy, B.
    Manfreo, B.
    Reich, J.
    Rigoni, G.
    2009 23RD IEEE/NPSS SYMPOSIUM ON FUSION ENGINEERING, 2009, : 154 - 157
  • [6] Control and instrumentation for the ITER magnet system
    Yoshida, K.
    Takahashi, Y.
    Iida, H.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2006, 16 (02) : 775 - 778
  • [7] The ITER power and particle control system
    Post, D
    Ando, T
    Antipenkov, A
    Chiocchio, S
    Dietz, J
    Federici, G
    Gouge, M
    Igitkhanov, Y
    Janeschitz, G
    Kukushkin, A
    Ladd, P
    Mandrekas, J
    Martin, E
    Mitin, D
    Nakamura, H
    Pacher, H
    Stacey, W
    Sugihara, M
    Tivey, R
    FUSION TECHNOLOGY, 1996, 30 (03): : 594 - 600
  • [8] ITER progresses into new baseline
    Barabaschi, Pietro
    Fossen, Arnaud
    Loarte, Alberto
    Becoulet, Alain
    Coblentz, Laban
    ITER Contributors
    FUSION ENGINEERING AND DESIGN, 2025, 215
  • [9] An overview of control system for the ITER electron cyclotron system
    Purohit, D.
    Bigelow, T.
    Billava, D.
    Bonicelli, T.
    Caughman, J.
    Darbos, C.
    Denisov, G.
    Gandini, F.
    Gassmann, T.
    Henderson, M.
    Journeux, J. Y.
    Kajiwara, K.
    Kobayashi, N.
    Nazare, C.
    Oda, Y.
    Omori, T.
    Rao, S. L.
    Rasmussen, D.
    Ronden, D.
    Saibene, G.
    Sakamoto, K.
    Sartori, F.
    Takahashi, K.
    Temkin, R.
    FUSION ENGINEERING AND DESIGN, 2011, 86 (6-8) : 959 - 962
  • [10] Development of the ITER baseline inductive scenario
    Casper, T.
    Gribov, Y.
    Kavin, A.
    Lukash, V.
    Khayrutdinov, R.
    Fujieda, H.
    Kessel, C.
    NUCLEAR FUSION, 2014, 54 (01)