Title :
Research on the Insulation Design of a 154 kV Class HTS Power Cable and Termination
Author :
Kwag, D.S. ; Cheon, H.G. ; Choi, J.H. ; Kim, H.J. ; Cho, J.W. ; Kim, S.H.
Author_Institution :
Gyeongsang Nat. Univ. & Eng. Res. Inst., Jinju
fDate :
6/1/2007 12:00:00 AM
Abstract :
A 154 kV class high-temperature superconducting (HTS) power cable system Is developing in Korea. For insulation design of this cable, the grading method of insulating paper is proposed. The electrical insulation material has been used two kind of laminated polypropylene paper (LPP) that has different thickness. The use of graded insulation gives improved mechanical bending properties of the cable. Also, within a HTS cable technology the terminations are important components. A HTS cable termination is energized with the line-to-ground voltage between the coaxial center and outer surrounding conductors, in the axial direction there is a temperature difference from ambient to about 77 K. For insulation design of this termination, the insulation material of the termination body used glass fiber reinforced plastic (GFRP) and the capacitance-graded method is proposed. Therefore, in order to insulating design of a 154 kV class HTS power cable and termination, this paper will report on the experimental investigations in impulse breakdown and surface flashover characteristics of the insulation materials. Based on these experimental data, the electrical insulation design of a 154 kV class HTS power cable and termination were calculated.
Keywords :
bending; coaxial cables; glass fibre reinforced plastics; high-temperature superconductors; power cable insulation; HTS power cable; HTS termination; capacitance-graded method; coaxial center; electrical insulation material; glass fiber reinforced plastic; graded insulation; grading method; high-temperature superconductor; insulation design; laminated polypropylene paper; mechanical bending; surface flashover characteristics; temperature 77 K; voltage 154 kV; Cable insulation; Coaxial cables; Conducting materials; Dielectrics and electrical insulation; High temperature superconductors; Mechanical factors; Plastic insulation; Power cables; Superconducting cables; Superconducting materials; Cable insulation; HTS cable; dielectric breakdown; insulation design; termination;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2007.899211