Quench and Stability Modelling of a Metal-Insulation Multi-Double-Pancake High-Temperature-Superconducting Coil

被引:17
作者
Gavrilin, Andrew V. [1 ]
Kolb-Bond, Dylan J. [1 ]
Kim, Kwang Lok [1 ]
Kim, Kwangmin [1 ]
Marshall, William S. [1 ]
Dixon, Iain R. [1 ]
机构
[1] Natl High Magnet Field Lab, Tallahassee, FL 32310 USA
基金
美国国家科学基金会;
关键词
No-insulation REBCO coils; first-principle model; quench; stability; computer simulation; contact resistance;
D O I
10.1109/TASC.2021.3066548
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 most detailed, first-principle simulation model of a quench in a high-temperature superconducting metal-insulation multi-module/multi-double-pancake coil, wound with a REBCO coated superconductor/tape and normal-metal tape (co-wind), was developed. It enables one to simulate a normal zone propagation, or non-propagation, in the subtle multi-turn structure of the coil's pancakes due to the inductive coupling and transverse electric contact between all the REBCO turns and co-wind turns along with the external circuit and active and passive quench protection systems. In doing so, the multi-module coil's structure is represented as a "rectilinear equivalent" electric circuit, a branched multi-decker multi-rectangle planar grid, which facilitates the mathematical formulation, using the standard electric circuit differential equations and the Kirchhoff's rules. The transient non-linear comprehensive heat conduction equations are employed to model the thermal part of the phenomenon at the same level of detail. All this turns the model into an effective design tool for metal-insulated, -stabilized and/or -reinforced multi-module coils. A parametric study of quench in a 6-module no-insulation (NI) test coil, using a stainless-steel thin co-wind, was conducted to identify the possibilities of the model. The profound effect of the transverse contact resistivity on an NI-coil quench behavior is confirmed and detailed.
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页数:7
相关论文
共 16 条
  • [1] Understanding quench in no-insulation (NI) REBCO magnets through experiments and simulations
    Bhattarai, Kabindra R.
    Kim, Kwanglok
    Kim, Kwangmin
    Radcliff, Kyle
    Hu, Xinbo
    Im, Chaemin
    Painter, Thomas
    Dixon, Iain
    Larbalestier, David
    Lee, SangGap
    Hahn, Seungyong
    [J]. SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2020, 33 (03)
  • [2] Chan W.-K., 2017, P 25 INT C MAGN TECH
  • [3] Improved stability, magnetic field preservation and recovery speed in (RE)Ba2Cu3Ox-based no-insulation magnets via a graded-resistance approach
    Chan, Wan Kan
    Schwartz, Justin
    [J]. SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2017, 30 (07)
  • [4] Dixon I. R., 2020, SUPERCOND SCI TECH, V32
  • [5] Dudarev AV, 1997, INST PHYS CONF SER, P1615
  • [6] Gavrilin A. V, 2015, CHATS APPL SUPERCOND
  • [7] Gavrilin A. V., 2016, P 5 INT WORKSH NUM M
  • [8] Hahn S, 2011, IEEE T APPL SUPERCON, V21, P1592, DOI [10.1109/TASC.2010.2093492, 10.1109/tasc.2010.2093492]
  • [9] Practical fit functions for transport critical current versus field magnitude and angle data from (RE)BCO coated conductors at fixed low temperatures and in high magnetic fields
    Hilton, D. K.
    Gavrilin, A. V.
    Trociewitz, U. P.
    [J]. SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2015, 28 (07)
  • [10] Sol-gel-Derived Al2O3-SiO2 Composite Coating for Electrical Insulation in HTS Magnet Technology
    Kandel, Hom
    Lu, Jun
    Jiang, Jianyi
    Han, Ke
    Gundlach, Scott
    Viouchkov, Youri
    Markiewicz, William Denis
    Weijers, Hubertus
    [J]. IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2012, 22 (05)