Title :
Very low impedance (VLI) superconductor cables
Author_Institution :
American Supercond. Corp., Westborough, MA, USA
fDate :
6/1/2005 12:00:00 AM
Abstract :
High Temperature Superconductor (HTS) cable is regarded as one of the most promising new technologies to address grid bottlenecks. Among HTS cable designs, one in particular-shielded cold dielectric cable-offers performance advantages particularly well suited to today´s siting, reliability and performance challenges. Shielded cold dielectric HTS transmission cables feature lower electrical losses; the virtual elimination of stray EMF; and significantly lower impedance than conventional cables and lines. Of particular importance, the very low impedance (VLI) inherent in cables of coaxial design makes it possible to control power flows over VLI circuits. In addition, variable impedance may be cost-effectively added to VLI circuits with relatively small angle, conventional phase angle regulators. Thus, VLI circuits can function like fully controllable DC circuits. The introduction of VLI cable enables new approaches to important challenges in grid management. The strategic insertion of relatively short segments of VLI cable to bridge bottlenecks can offload flows from overburdened conventional circuits, thereby expanding grid capacity, extending the useful life of conventional network elements, and raising overall asset utilization. With power markets in turmoil and transmission increasingly the center of attention, VLI cable is a breakthrough technology that has great potential as a cost-effective solution for many of the industry´s most pressing problems.
Keywords :
coaxial cables; electric impedance; high-temperature superconductors; losses; power transmission lines; superconducting cables; HTS cable; VLI circuits; VLI superconductor cables; asset utilization; coaxial cable design; controllable DC circuits; electrical loss; grid capacity expansion; grid management; high temperature superconductor; network elements; phase angle regulators; power flow control; shielded cold dielectric HTS transmission cables; shielded cold dielectric cable; stray EMF; variable impedance; very low impedance; Cable shielding; Circuits; Coaxial cables; Dielectric losses; Electric variables control; High temperature superconductors; Impedance; Propagation losses; Superconducting cables; Superconducting transmission lines; Impedance; superconducting cables;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.849477