Acoustic emission during quench training of superconducting accelerator magnets

被引:24
|
作者
Marchevsky, M. [1 ]
Sabbi, G. [1 ]
Bajas, H. [2 ]
Gourlay, S. [1 ]
机构
[1] Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Berkeley, CA 94720 USA
[2] CERN, European Org Nucl Res, CH-1211 Geneva, Switzerland
关键词
Piezoelectric transducers; Cryogenic electronics; Acoustic emission; Quench detection; Superconducting accelerator magnets; SELF-ORGANIZED CRITICALITY;
D O I
10.1016/j.cryogenics.2015.03.005
中图分类号
O414.1 [热力学];
学科分类号
摘要
Acoustic emission (AE) sensing is a viable tool for superconducting magnet diagnostics. Using in-house developed cryogenic amplified piezoelectric sensors, we conducted AE studies during quench training of the US LARP's high-field quadrupole HQ02 and the LBNL's high-field dipole HD3. For both magnets, AE bursts were observed, with spike amplitude and frequency increasing toward the quench current during current up-ramps. In the HQ02, the AE onset upon current ramping is distinct and exhibits a clear memory of the previously-reached quench current (Kaiser effect). On the other hand, in the HD3 magnet the AE amplitude begins to increase well before the previously-reached quench current (felicity effect), suggesting an ongoing progressive mechanical motion in the coils. A clear difference in the AE signature exists between the untrained and trained mechanical states in HD3. Time intervals between the AE signals detected at the opposite ends of HD3 coils were processed using a combination of narrow-band pass filtering; threshold crossing and correlation algorithms; and the spatial distributions of AE sources and the mechanical energy release were calculated. Both distributions appear to be consistent with the quench location distribution. Energy statistics of the AE spikes exhibits a power-law scaling typical for the self-organized critical state. Published by Elsevier Ltd.
引用
收藏
页码:50 / 57
页数:8
相关论文
共 50 条
  • [41] Review of quench performance of LHC main superconducting magnets
    Pugnat, P.
    Siemko, A.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2007, 17 (02) : 1091 - 1096
  • [42] A Quench Detection and Monitoring System for Superconducting Magnets at Fermilab
    Galt, A.
    Al Atassi, O.
    Chlachidze, G.
    Cummings, T.
    Feher, S.
    Hocker, A.
    Kotelnikov, S.
    Lamm, M.
    Makulski, A.
    Nogiec, J.
    Orris, D.
    Pilipenko, R.
    Tartaglia, M.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2022, 32 (06)
  • [43] STUDY OF QUENCH PROPAGATION VELOCITY IN SUPERCONDUCTING MAGNETS FOR UNK
    BOGDANOV, IV
    SHCHERBAKOV, PA
    SNITKO, VP
    TKACHENKO, NP
    VASILIEV, LM
    VYBORNOV, MG
    ZLOBIN, AV
    IEEE TRANSACTIONS ON MAGNETICS, 1989, 25 (02) : 1545 - 1548
  • [44] INVESTIGATION OF QUENCH PRESSURE TRANSIENTS IN THE LHC SUPERCONDUCTING MAGNETS
    LEBRUN, P
    WAHLSTROM, T
    VANWEELDEREN, R
    WILLIAMS, L
    CRYOGENICS, 1994, 34 : 705 - 708
  • [45] QUENCH DETECTION OF SUPERCONDUCTING MAGNETS USING ULTRASONIC WAVE
    NINOMIYA, A
    SAKANIWA, K
    KADO, H
    ISHIGOHKA, T
    HIGO, Y
    IEEE TRANSACTIONS ON MAGNETICS, 1989, 25 (02) : 1520 - 1523
  • [46] SARUMAN - AN INTEGRATED PROCEDURE FOR THE ANALYSIS OF QUENCH IN SUPERCONDUCTING MAGNETS
    BOTTURA, L
    ZIENKIEWICZ, OC
    IEEE TRANSACTIONS ON MAGNETICS, 1994, 30 (04) : 1978 - 1981
  • [47] Adaptive time stepping in quench simulation for superconducting magnets
    Oh, D. K.
    Lewandowska, M.
    Bottura, L.
    CRYOGENICS, 2022, 121
  • [48] Quench simulation in an integrated design environment for superconducting magnets
    Schwerg, Nikolai
    Auchmann, Bernhard
    Russenschuck, Stephan
    IEEE TRANSACTIONS ON MAGNETICS, 2008, 44 (06) : 934 - 937
  • [49] FULL FEATURED IMPLEMENTATION OF QUENCH SIMULATION IN SUPERCONDUCTING MAGNETS
    PISSANETZKY, S
    LATYPOV, D
    CRYOGENICS, 1994, 34 (10) : 795 - 804
  • [50] Analytical method for the prediction of quench initiation and development in accelerator magnets
    Bermudez, Susana Izquierdo
    Bottura, Luca
    Bajas, Hugues
    Willering, Gerard
    CRYOGENICS, 2018, 95 : 102 - 109