• DocumentCode
    1242282
  • Title

    Three-directional analysis of thermally-induced strains for Nb3Sn and oxide composite superconductors

  • Author

    Murase, S. ; Okamoto, H. ; Wakasa, T. ; Tsukii, T. ; Shimamoto, S.

  • Author_Institution
    Okayama Univ., Japan
  • Volume
    13
  • Issue
    2
  • fYear
    2003
  • fDate
    6/1/2003 12:00:00 AM
  • Firstpage
    3386
  • Lastpage
    3389
  • Abstract
    Composite superconductors like Cu/Nb3Sn and Ag/Bi-oxides are subjected to thermally-induced residual strain by other component materials due to the around 1000 K temperature difference between the high temperatures where the superconductor is formed and the cryogenic temperatures where they are operated. To clarify especially the radial (r) and (θ) tangential strain behaviors, we analyzed elastic-plastically two models, the concentric core model (single-core model) and multi-core model and used two analysis methods, calculation of the force balance equation for the former model and computing of FEM for the former and the latter models. Strains in r and θ directions varied with combination of component materials having large and small thermal expansion coefficients; the superconductor sandwiched by high thermal expansion materials is subjected to larger tensile r-strain and larger compressive θ-strain, as compared with superconducting core only embedded in the matrix. Furthermore it was found that there was a strain distribution by the core location at the inner or the outer. Finally, a better combination of the superconductor with other materials was obtained.
  • Keywords
    aluminium alloys; bismuth compounds; copper; high-temperature superconductors; niobium alloys; silver; superconducting magnets; thermal analysis; tin alloys; 1000 K; Ag-BiSrCaCuO; Ag/Bi-oxides; Cu-Nb3Al; Cu-Nb3Sn; Cu/Nb3Sn; composite superconductors; concentric core model; core location; force balance equation; high thermal expansion materials; multi-core model; radial strain behaviors; single-core model; strain distribution; tangential strain behaviors; thermal expansion coefficients; thermally-induced residual strain; thermally-induced strains; three-directional analysis; Capacitive sensors; Composite materials; Cryogenics; Equations; High temperature superconductors; Niobium; Superconducting materials; Superconductivity; Thermal expansion; Tin;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2003.812331
  • Filename
    1212354