DocumentCode
1423777
Title
The Construction Progress of a High-Tc Superconducting Power Substation in China
Author
Zhang, Guomin ; Dai, Shaotao ; Song, Naihao ; Zhu, Zhiqin ; Zhang, Jingye ; Guo, Wenyong ; Zhang, Dong ; Zhang, Zhifeng ; Xiao, Liye ; Lin, Liangzhen
Author_Institution
Key Lab. of Appl. Supercond., Chinese Acad. of Sci., Beijing, China
Volume
21
Issue
3
fYear
2011
fDate
6/1/2011 12:00:00 AM
Firstpage
2824
Lastpage
2827
Abstract
It is expected that superconducting technologies will play an important role in the future smart grid, because the application of superconductor technologies in the power grid can decrease power losses, relieve overload, avoid higher levels of transmission voltage, increase power transmission capacity, and improve power quality and grid stability. In recent years, high temperature (high-Tc) superconducting power technologies have achieved remarkable progress. High temperature superconducting (HTS) power equipment, such as HTS power cables, HTS transformers, high-Tc superconducting fault current limiters (SFCL), and high-Tc superconducting magnetic energy storage devices (SMES) have been demonstrated in the power grids of many countries. With the development of HTS power equipment, the construction of a HTS power substation is ready. In China, a 10.5 kV HTS power substation is under construction in Baiyin city, Gansu province. The substation integrates a HTS power cable, a HTS transformer, a HTS fault current limiter, and a high-Tc SMES. All these HTS power devices, which were previously developed by the Institute of Electrical Engineering (IEE), Chinese Academy of Sciences (CAS), have been demonstrated to operate for a long time in the commercial power grid. In this paper, the design and constructing progress of the HTS substation are introduced in detail.
Keywords
design; high-temperature superconductors; power transmission control; power transmission planning; smart power grids; substations; superconducting fault current limiters; superconducting transformers; China; HTS power cables; HTS transformers; SFCL; high-Tc superconducting fault current limiters; high-Tc superconducting magnetic energy storage devices; high-Tc superconducting power substation; power transmission capacity; power transmission control; smart power grids; substation construction process; substation design; voltage 10.5 kV; Cooling; High temperature superconductors; Power cables; Substations; Superconducting cables; Superconducting magnetic energy storage; HTS cable; HTS power substation; HTS transformer; High-Tc SFCL; high-Tc SMES;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2010.2098471
Filename
5685591
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