Development of superconducting power devices in Europe

被引:55
作者
Tixador, Pascal [1 ]
机构
[1] CNRS, Grenoble INP Inst Neel G2Elab, F-38042 Grenoble 09, France
来源
PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS | 2010年 / 470卷 / 20期
关键词
Superconducting devices; FCL; Power cables; Smart grids; Electrical machines; Flywheel; SMES; FAULT CURRENT LIMITER; HIGH-TEMPERATURE SUPERCONDUCTOR; MVA; KV; CABLE;
D O I
10.1016/j.physc.2010.05.014
中图分类号
O59 [应用物理学];
学科分类号
摘要
Europe celebrated last year (2008) the 100-year anniversary of the first liquefaction of helium by H. Kammerling Onnes in Leiden. It led to the discovery of superconductivity in 1911. Europe is still active in the development of superconducting (SC) devices. The discovery of high critical temperature materials in 1986, again in Europe, has opened a lot of opportunities for SC devices by broking the 4 K cryogenic bottleneck. Electric networks experience deep changes due to the emergence of dispersed generation (renewable among other) and to the advances in ICT (Information Communication Technologies). The networks of the future will be "smart grids". Superconductivity will offer "smart" devices for these grids like FCL (Fault Current Limiter) or VLI (Very Low Inductance) cable and would certainly play an important part. Superconductivity also will participate to the required sustainable development by lowering the losses and enhancing the mass specific powers. Different SC projects in Europe will be presented (Cable, FCL, SMES, Flywheel and Electrical Machine) but the description is not exhaustive. Nexans has commercialized the first two FCLs without public funds in the European grid (UK and Germany). The Amsterdam HTS cable is an exciting challenge in term of losses for long SC cables. European companies (Nexans, Air Liquide, Siemens, Converteam, ...) are also very active for projects outside Europe (LIPA, DOE FCL, ...). (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:971 / 979
页数:9
相关论文
共 35 条
[1]  
ABEL TR, 1999, MODERN POWER SYST, V19, P10
[2]  
BOCK J, 2005, IEEE T APPL SUPERCON, V15
[3]  
FEVRIER A, 1986, P ICEC, V10, P139
[4]  
FISCHER S, C INT GRANDS RES EL
[5]   THE 60 HZ PERFORMANCE OF SUPERCONDUCTING POWER TRANSMISSION CABLES RATED FOR 333 MVA PER PHASE [J].
FORSYTH, EB .
IEEE TRANSACTIONS ON POWER APPARATUS AND SYSTEMS, 1984, 103 (08) :2023-2033
[6]   Basic Concepts, Status, Opportunities, and Challenges of Electrical Machines utilizing High-Temperature Superconducting (HTS) Windings [J].
Frauenhofer, J. ;
Grundmann, J. ;
Klaus, G. ;
Nick, W. .
8TH EUROPEAN CONFERENCE ON APPLIED SUPERCONDUCTIVITY (EUCAS'07), 2008, 97
[7]  
GESCHIERE A, 2007, 19 INT C EL DISTR VI
[8]   SUPERCONDUCTING FAULT-CURRENT LIMITER [J].
GRAY, KE ;
FOWLER, DE .
JOURNAL OF APPLIED PHYSICS, 1978, 49 (04) :2546-2550
[9]   Development of a 13.2 kV/630 A (8.3 MVA) high temperature superconducting fault current limiter [J].
Kang, Hyoungku ;
Lee, Chanjoo ;
Nam, Kwanwoo ;
Yoon, Yong Soo ;
Chang, Ho-Myung ;
Ko, Tae Kuk ;
Seok, Bok-Yeol .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2008, 18 (02) :628-631
[10]  
LEWIS C, 2007, POW ENG SOC GEN M 20