Title :
Durability Test of Fault Current Limiter Made of 2G Wire Having Stainless Steel as a Stabilization Layer Taking Into Account Fault Angle
Author :
Ho-Ik Du ; Tae-Min Kim ; Byoung-Sung Han ; Gong-Hyun Hong ; Sung-Chae Yang
Author_Institution :
HOPE IT Human Resource Dev. Center, Chonbuk Nat. Univ., Jeonju, South Korea
Abstract :
A superconducting current limiter should secure the stability of a power system by making it durable. That is, even if a fault current is applied repeatedly to a superconductor, its characteristics should remain unchanged. The fault angle at the fault time within a power system varies depending on the failure position, cause, and type. Therefore, to investigate the durability of a superconducting current-limiting element, it is necessary to examine the quenching characteristics based on the fault angles. In this paper, a YBCO-coated conductor, whose current-limiting ability and stability had been proven in previous studies, was used to manufacture superconducting current-limiting elements and conduct a durability test. The durability test measured the quenching characteristics while a fault current was applied repeatedly at certain intervals depending on the fault angles. The superconducting wire used in the durability test was a YBCO-coated conductor with a stainless stabilization layer, which showed the best mechanical characteristics among the various thin-film-type wires.
Keywords :
barium compounds; durability; high-temperature superconductors; stainless steel; superconducting fault current limiters; yttrium compounds; 2G wire; YBCO; YBCO-coated conductor; durability test; fault angle; fault current limiter; power system stability; quenching characteristics; stabilization layer; stainless steel; thin film type wires; Conductors; Power system stability; Resistance; Steel; Superconducting epitaxial layers; Superconducting filaments and wires; Yttrium barium copper oxide; Current-limiting element; YBCO coated conductor; YBCO-coated conductor; current limiting element; durability test; fault angle; stabilization layer;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2377127