Search NASASearch

NASA NTRS · 20190001165

MAGESTIC: Magnetically Enabled Structures Using Interacting Coils

Abstract

In our NIAC Phase I study, awarded September 2011, the MIT Space Systems Lab (MIT SSL) began investigating a new structural and mechanical technique aimed at reducing the mass and increasing the stowed-to-deployed ratio of spacecraft systems. This technique uses the magnetic fields from current passing through coils of high temperature superconductors (HTSs) to support spacecraft structures and deploy them to operational configurations from their positions as stowed inside a launch vehicle fairing. These electromagnetic coils are tethered or hinged together in such a way that their motion in some directions or around some axes is constrained, as in Figure 1. Our Phase II study,awarded in Fall 2012, continued this work on electromagnetic structures, with an added focus on developing a new thermal system, investigating additional, non-structural electromagnet functions, and creating a maturation roadmap and plan for addressing barriers to feasibility of the technology. We now call the project MAGESTIC, or Magnetically Enabled STructures using Interacting Coils.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Saenz-Otero, Alvar, Sedwick, Raymond, Adams, Carl, Gettliffe, Gwendolyn V., de Soria-Santacruz, Maria, Cohen, Brian, Smart, David, Bautista, Guillermo, Perez, Aaron, Lorenzini, Enrico, Martinez-Sanchez, Manuel, Miller, David W., Porter, Allison, Schwartz, Zachary, Kindl, Scott, Wesenberg, Richard. 2018-11-12. MAGESTIC: Magnetically Enabled Structures Using Interacting Coils. https://ntrs.nasa.gov/citations/20190001165

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related reports

Performance and Characterization of a Modular Superconducting Nanowire Single Photon Detector System for Space-to-Earth Optical Communications Links

Space-to-ground photon-counting optical communication links supporting high data rates over large distances require enhanced ground receiver sensitivity in order to reduce the mass and power burden on the spacecraft transmitter. Superconducting nanowire single-photon detectors (SNSPDs) have been demonstrated to offer superior performance in detection efficiency, timing resolution, and count rates over semiconductor photodetectors, and are a suitable technology for high photon efficiency links. Recently photon detectors based on superconducting nanowires have become commercially available, and we have assessed the characteristics and performance of one such commercial system as a candidate for potential utilization in ground receiver designs. The SNSPD system features independent channels which can be added modularly, and we analyze the scalability of the system to support different data rates, as well as consider coupling concepts and issues as the number of channels increases.

Superconductors

High-Temperature Superconductors as Electromagnetic Deployment and Support Structures in Spacecraft

This report, concluding a one-year NIAC Phase I study, describes a new structural and mechanical technique aimed at reducing the mass and increasing the deployed-to-stowed length and volume ratios of spacecraft systems. This technique uses the magnetic fields generated by electrical current passing through coils of high‐temperature superconductors (HTSs) to support spacecraft structures and deploy them to operational configurations from their stowed positions inside a launch vehicle fairing.

Superconductors