Preliminary studies for the conceptual design of the quench detection system for the DTT TF superconducting magnets

被引:0
|
作者
Fiamozzi Zignani C. [1 ]
Messina G. [1 ]
Morici L. [1 ]
机构
[1] ENEA C.R. Frascati, Via Enrico Fermi 45, Rome
关键词
Inductive noise; Quench detection; Superconducting magnets; Tokamak;
D O I
10.1016/j.fusengdes.2020.112180
中图分类号
学科分类号
摘要
The superconducting DTT magnetic system needs a quench detection systems (QDSs) fast enough to trigger the dumping of the magnetic energy in case of quench and avoid irreversible damage of the cable systems. With this aim, a primary system based on the detection of the resistive voltage associated with the quench offers the best quench detection guarantees. The tokamak environment is affected by several electromagnetic noises during plasma scenarios so that the resistive voltage detection, during normal operation, can be compromised by the presence of large voltages induced by self and mutual magnetic coupling among coils and with plasma or passive elements: the resulting inductive voltages across a TF coil, or part thereof, could be much higher than the quench voltage thresholds. Voltage compensations techniques, therefore, have necessarily to be foreseen in the QDSs conceptual design, to discriminate the resistive component associated with the quench. We present a reconnaissance of all known electromagnetic noises that could affect a TF coils QDS in DTT: this analysis is conducted by means of analytical calculations, made up with the aim to evaluate and have a prevision of the maximum extent of the voltages induced across TF coils and Double Pancakes (DPs) during, in particular, the Single Null (SN) scenario. © 2020 Elsevier B.V.
引用
收藏
相关论文
共 50 条
  • [31] Conceptual Design Studies of an HTS Insert for the DTT Central Solenoid
    Giannini, L.
    Muzzi, L.
    Celentano, G.
    De Marzi, G.
    Romanelli, G.
    Zoboli, L.
    Turtu, S.
    Di Zenobio, A.
    Califano, F.
    Della Corte, A.
    IEEE Transactions on Applied Superconductivity, 2022, 32 (04):
  • [32] Conceptual Design Studies of an HTS Insert for the DTT Central Solenoid
    Giannini, L.
    Muzzi, L.
    Celentano, G.
    De Marzi, G.
    Romanelli, G.
    Zoboli, L.
    Turtu, S.
    Di Zenobio, A.
    Califano, F.
    della Corte, A.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2022, 32 (04)
  • [33] Quench detection method for superconducting magnets with a phase difference measurement system based on multiple-correlation
    Wang, Teng
    Hu, Yanlan
    Fu, Peng
    Liu, Huajun
    FUSION ENGINEERING AND DESIGN, 2021, 170
  • [34] A Fast Quench Protection System for High-Temperature Superconducting Magnets
    van Nugteren, Jeroen
    Murtomaki, Jaakko
    Ruuskanen, Janne
    Kirby, Glyn
    Hagen, Per
    de Rijk, Gijs
    Ten Kate, Herman
    Bottura, Luca
    Rossi, Lucio
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2019, 29 (01)
  • [35] Quench detection and protection system design and analysis of the 7 T superconducting magnet
    龙风
    施毅
    刘方
    倪志鹏
    中国物理C, 2010, 34 (04) : 492 - 495
  • [36] Quench detection and protection system design and analysis of the 7 T superconducting magnet
    Long Feng
    Shi Yi
    Liu Fang
    Ni Zhi-Peng
    CHINESE PHYSICS C, 2010, 34 (04) : 492 - 495
  • [37] Investigations About Quench Detection in the ITER TF Coil System
    Coatanea, M.
    Duchateau, J. -L.
    Nicollet, S.
    Lacroix, B.
    Topin, F.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2012, 22 (03)
  • [38] Current distribution monitoring enables quench and damage detection in superconducting fusion magnets
    Reed Teyber
    Jeremy Weiss
    Maxim Marchevsky
    Soren Prestemon
    Danko van der Laan
    Scientific Reports, 12
  • [39] Current distribution monitoring enables quench and damage detection in superconducting fusion magnets
    Teyber, Reed
    Weiss, Jeremy
    Marchevsky, Maxim
    Prestemon, Soren
    van der Laan, Danko
    SCIENTIFIC REPORTS, 2022, 12 (01)
  • [40] Influence of magnetic hysteresis on quench-voltage detection in large superconducting magnets
    Takahata, K.
    Imagawa, S.
    Yanagi, N.
    Chikaraishi, H.
    Mito, T.
    FUSION ENGINEERING AND DESIGN, 2006, 81 (20-22) : 2571 - 2575