Title :
Design of HTS Transmission Cable With Cu Stabilizer
Author :
Sim, K.D. ; Cho, J.W. ; Bae, J.H. ; Kim, H.J. ; Kim, S.H. ; Seong, K.C. ; Kim, J.H. ; Jang, H.M. ; Lee, C.Y.
Author_Institution :
Korea Electrotechnol. Res. Inst., Changwon
fDate :
6/1/2006 12:00:00 AM
Abstract :
More than three HTS cable development and installation projects are proceeded over the world. A 22.9 kV/50 MVA class HTS cable system has been developed in Korea during last 3 years. And the HTS cable system for commercialization will be developed and installed on the real or test power grid within 2 years. Every HTS cable system has to satisfy the fault-current specifications of the power grid in order to protect the cable itself from the fault current. HTS cable composed of HTS tapes has some capacity of enduring the fault current by bypassing the fault-current through its Ag-sheath. But it may not be enough. So, some Cu stabilizer is generally introduced inside the conductor layers and outside the shield layers of HTS cable core for some higher fault current grade. In this paper, the design method of HTS cable with Cu stabilizer will be introduced. And the fault current capacity of HTS cable and its eddy current loss generated from the stabilizer will be calculated. And the impedance change of HTS cable in the fault current state will be calculated
Keywords :
cable sheathing; cable shielding; copper; eddy current losses; fault currents; high-temperature superconductors; power cables; power grids; silver; superconducting cables; superconducting tapes; 22.9 kV; 50 MVA; AC losses; Ag; Ag-sheath; Cu; Cu stabilizer; HTS cable core; HTS tapes; HTS transmission cable; Korea; cable protection; conductor layers; eddy current loss; fault-current specifications; power grid; shield layers; Cable shielding; Commercialization; Conductors; Design methodology; Fault currents; High temperature superconductors; Power grids; Power system protection; Superconducting cables; System testing; AC loss; HTS superconducting power cable system stabilizer; fault current; quench;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.864318