Title :
Equal current distribution in parallel circuits of resistive superconducting fault current limiters using multiple superconducting inter-phase transformers
Author :
Sim, Jungwook ; Choi, Yong-Sun ; Kim, Hye-Rim ; Hyun, Ok-Bae
Author_Institution :
Adv. Technol. Center, Korea Electr. Power Res. Inst., Daejeon, South Korea
fDate :
6/1/2005 12:00:00 AM
Abstract :
Differences in impedances of the superconducting parallel circuits during normal operations cause unequal distribution of currents in the circuits, resulting in quench or loss in certain superconducting parts. However, those impedances are so small that they are hardly controllable. To solve this problem, attempted were such measures as inserting resistors or inductors into each of the parallel circuits in series. This leaves extra losses due to resistance or reactance. In this study, we proposed a multiple superconducting inter-phase-transformers (SIPT) for the equal current distribution in superconducting parallel circuits and investigated their performance. SIPTs were fabricated using double pancake windings of BSCCO-2223 HTS tapes and were applied to parallel circuits of resistive superconducting fault current limiters (SFCLs). Results showed that the SIPTs effectively made the current distribution uniform in superconducting parallel circuits that had unequal resistances. In addition, the secondary loop configuration with air-core SIPTs was suggested as the most efficient for the SFCLs.
Keywords :
current distribution; fault current limiters; superconducting transformers; air-core SIPT; double pancake windings; electric impedances; equal current distribution; internal resistance; multiple superconducting inter-phase transformers; resistive SFCL; secondary loop configuration; superconducting fault current limiters; superconducting parallel circuits; Circuits; Current distribution; Electrical resistance measurement; Fault current limiters; High temperature superconductors; Impedance; Inductors; Resistors; Superconducting films; Transformers; Equal current distribution; internal resistance; superconducting inter-phase transformers; superconducting parallel circuits;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.849467