VIPER: an industrially scalable high-current high-temperature superconductor cable

Author:

Hartwig Zachary S,Vieira Rui F,Sorbom Brandon NORCID,Badcock Rodney AORCID,Bajko Marta,Beck William K,Castaldo Bernardo,Craighill Christopher L,Davies Michael,Estrada Jose,Fry Vincent,Golfinopoulos Theodore,Hubbard Amanda E,Irby James H,Kuznetsov Sergey,Lammi Christopher J,Michael Philip C,Mouratidis Theodore,Murray Richard A,Pfeiffer Andrew T,Pierson Samuel Z,Radovinsky Alexi,Rowell Michael D,Salazar Erica E,Segal Michael,Stahle Peter W,Takayasu Makoto,Toland Thomas L,Zhou Lihua

Abstract

Abstract High-temperature superconductors (HTS) promise to revolutionize high-power applications like wind generators, DC power cables, particle accelerators, and fusion energy devices. A practical HTS cable must not degrade under severe mechanical, electrical, and thermal conditions; have simple, low-resistance, and manufacturable electrical joints; high thermal stability; and rapid detection of thermal runaway quench events. We have designed and experimentally qualified a vacuum pressure impregnated, insulated, partially transposed, extruded, and roll-formed (VIPER) cable that simultaneously satisfies all of these requirements for the first time. VIPER cable critical currents are stable over thousands of mechanical cycles at extreme electromechanical force levels, multiple cryogenic thermal cycles, and dozens of quench-like transient events. Electrical joints between VIPER cables are simple, robust, and demountable. Two independent, integrated fiber-optic quench detectors outperform standard quench detection approaches. VIPER cable represents a key milestone in next-step energy generation and transmission technologies and in the maturity of HTS as a technology.

Funder

Commonwealth Fusion Systems

Publisher

IOP Publishing

Subject

Materials Chemistry,Electrical and Electronic Engineering,Metals and Alloys,Condensed Matter Physics,Ceramics and Composites

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