Title :
Manufacturing and Test of a 35 kV/90 MVA Saturated Iron-Core Type Superconductive Fault Current Limiter for Live-Grid Operation
Author :
Xin, Yin ; Gong, W.Z. ; Niu, X.Y. ; Gao, Y.Q. ; Guo, Q.Q. ; Xiao, L.X. ; Cao, Z.J. ; Hong, H. ; Wu, A.G. ; Li, Z.H. ; Hu, X.M. ; Tian, B. ; Zhang, J.Y. ; He, Y. ; Wang, Y. ; Cui, J. ; Ding, S.Z. ; Wang, J.Z. ; Ren, A.L. ; Ye, F.
Author_Institution :
Beijing Economic & Technol. Dev. Area, Innopower Supercond. Cable Co., Ltd., Beijing, China
fDate :
6/1/2009 12:00:00 AM
Abstract :
We developed a saturated iron-core type 35 kV/90 MVA superconductive fault current limiter and installed the device in a transmission network at Puji substation of China Southern Power Grid for live-grid operation. Innovative design in the iron-core configuration ensures that the device has low impedance in normal power transmission and sufficiently high impedance for a fault current limiting action. A magnetization control circuit allows the iron-core to be saturated or de-saturated depending upon the functional requirements. An energy release and voltage-surge protection unit can promptly discharge the magnetic energy accumulated in the iron-core and suppress the induced and surge voltages of the dc circuit in a current limiting event. This device has been designed to reduce the magnitude of a fault current by about 50%, which will prevent the breaking capacity of the existing circuit breakers in the transmission network from being exceeded in the predictable future. This article presents structural and functional specifications and reports up-to-date live-grid operation data of the device.
Keywords :
circuit breakers; fault current limiters; power grids; power transmission; surge protection; China Southern Power Grid; Puji substation; circuit breakers; energy release; live-grid operation; magnetic energy; magnetization control circuit; saturated iron-core type superconductive fault current limiter; transmission network; voltage 35 kV; voltage-surge protection unit; Current limiters; saturable cores; short circuit currents; superconducting coils; superconducting devices;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2009.2018510