Measurements and tests of HTS bulk material in resistive fault current limiters

被引:12
|
作者
Noe, M
Juengst, KP
Werfel, FN
Elschner, S
Bock, J
Wolf, A
Breuer, F
机构
[1] Forschungszentrum Karlsruhe, Inst Tech Phys, D-76021 Karlsruhe, Germany
[2] Adelwitz Technol Zentrum, Rittergut Adelwitz, D-04886 Adelwitz, Germany
[3] Fachhsch Mannheim, D-68163 Mannheim, Germany
[4] Nexans SuperConductors, D-50351 Hurth, Germany
来源
PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS | 2002年 / 372卷 / PART 3期
关键词
superconducting fault current limiters; FCL; quench; BSCCO; 2212; YBCO;
D O I
10.1016/S0921-4534(02)01092-4
中图分类号
O59 [应用物理学];
学科分类号
摘要
The application of superconducting fault current limiters (SCFCL) depends highly on their technical and economical benefits. Therefore it is obvious that the main requirements on the SCFCL are a reliable, fail-safe and rapid current limitation, low losses, and an inexpensive production. As a potential candidate material we have investigated HTS bulk material in resistive fault current limiters. Our report focuses on the E-j-curves, the AC-losses and the quench behaviour of melt cast processed-BSCCO 2212 and melt textured polycrystalline-YBCO 123. Within a temperature range from 64 to 80 K E-j-curves and AC losses of HTS elements were measured. The measurement results show that HTS bulk material meets the SCFCL specifications. In order to avoid hot spots during limitation and to improve mechanical stability a metallic bypass is needed. First test results of the quench behaviour of HTS bulk material with metallic bypass demonstrate safe limitation up to the specified electrical field of 100 V/m. (C) 2002 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:1626 / 1630
页数:5
相关论文
共 50 条
  • [21] Optimal Placement of Resistive Superconducting Fault Current Limiters in Microgrid
    Rai, Sneha
    De, Mala
    ADVANCES IN POWER AND CONTROL ENGINEERING, GUCON 2019, 2020, 609 : 81 - 91
  • [22] Resistive Superconducting Fault Current Limiters Are Becoming a Mature Technology
    Bock, J.
    Hobl, A.
    Schramm, J.
    Kraemer, S.
    Jaenke, C.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2015, 25 (03)
  • [23] Predicting the effects of inhomogeneities in resistive superconducting fault current limiters
    Coombs, TA
    Tadinada, K
    Weller, R
    Campbell, AM
    PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS, 2002, 372 (PART 3): : 1602 - 1605
  • [24] Shielded-core fault current limiters with smooth HTS transition
    Gerhold, J
    INTERNATIONAL CRYOGENIC ENGINEERING CONFERENCE 1998, 1998, : 387 - 390
  • [25] Alternating current loss of strip arrays as a model for resistive fault current limiters
    Mawatari, Y
    Yamasaki, H
    ADVANCES IN SUPERCONDUCTIVITY XII, 2000, : 742 - 744
  • [26] Superconducting fault current limiters: main concepts and tests
    de Sousa, Wescley Tiago B.
    Polasek, Alexander
    Dias, Rodrigo
    de Andrade, Rubens, Jr.
    REVISTA BRASILEIRA DE ENSINO DE FISICA, 2012, 34 (04):
  • [27] Modeling and simulation of high temperature resistive superconducting fault current limiters
    Ye, L
    Juengst, KP
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2004, 14 (02) : 839 - 842
  • [28] Realistic Evaluation of Resistive Superconducting Fault Current Limiters in Distribution Networks
    Dong, Qihuan
    de Sousa, W. T. B.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2024, 34 (03) : 1 - 9
  • [29] Research on the Vacuum Arc Commutating Characteristic of Resistive Fault Current Limiters
    Cheng, Xian
    Ge, Guowei
    Liao, Minfu
    Duan, Xiongying
    Huang, Zhihui
    HIGH TEMPERATURE, 2019, 57 (05) : 628 - 635
  • [30] Research on the Vacuum Arc Commutating Characteristic of Resistive Fault Current Limiters
    Guowei Xian Cheng
    Minfu Ge
    Xiongying Liao
    Zhihui Duan
    High Temperature, 2019, 57 : 628 - 635