COMPOSITE TECHNOLOGY DEVELOPMENT, INC. — Department of Energy SBIR Phase II: 20c

COMPOSITE TECHNOLOGY DEVELOPMENT, INC. — SBIR Phase II award from Department of Energy.

Amount
$999,972
Agency
Department of Energy
Program / Phase
SBIR · Phase II
Topic
20c
Solicitation
DE-FOA-0001646
NAICS
Place of performance
CO
Period
2017-07-31 → 2019-07-30

Description

REBCO superconductors are being considered for use in high field magnets for Magnetic Fusion Energy due to their potential for reducing facility size and cost. However, the anisotropy of REBCO tapes resulting from the planar nature of the crystals in the material leads to significant losses in expected current as well as leading to non-uniform magnetic fields. Transposition of the tapes in a cable structure (e.g., Twisted Stacked Tape Conductors) remains the best means of minimizing these effects. Production of long continuous lengths of these cables will be required in order realize the potential of high field magnets based on these materials. In this program, Composite Technology Development, working with the Plasma Science and Fusion Center at the Massachusetts Institute of Technology, will develop methods for the production of Twisted Stacked Tape Conductor cables in a round former using an insulation scheme demonstrated in Phase I. The work in this program will enable the production of long continuous cables and will demonstrate their applicability to cable-in-plate configurations that are common in fusion magnet constructions. To achieve the goals of the program, Composite Technology Development, Inc. will modify the design of an existing, pilot-scale reel-to-reel system designed for insulating round wire to accommodate the continuous assembly, twisting, and insulating of Twisted Stacked Tape Conductor cable. Cable designs will be developed by the Massachusetts Institute of Technology, and they will also develop testing methods and verify the electrical and mechanical performance of the insulated cables produced during the course of the Phase II program. Experimental data will then be used to design a toroidal field coil for a future fusion reactor. This technology is expected to enable the production of next generation fusion devices as well impacting other applications including increases in beam luminosity and energy, both of which are planned for the Large Hadron Collider (LHC), the construction of HTS magnets for Magnetic Resonance Imaging (MRI) and Nuclear Magnetic Resonance (NMR) systems, Superconducting Magnetic Energy Storage (SMES) systems, superconducting generators for large (10 MW) off- shore wind turbines, power cables for industry and utility applications (e.g., data centers and high population density areas), and electric motors for ships and rail systems.