• DocumentCode
    1101714
  • Title

    Calculated stress distribution in a PbMo6S8 wire performing the Ic vs. ϵ experiment

  • Author

    Goldacker, W. ; Rieger, C. ; Maurer, W.

  • Author_Institution
    Inst. fur Tech. Phys., Kernforschungszentrum Karlsruhe, Germany
  • Volume
    27
  • Issue
    2
  • fYear
    1991
  • fDate
    3/1/1991 12:00:00 AM
  • Firstpage
    946
  • Lastpage
    949
  • Abstract
    The precompression of the superconducting filament in a PbMo6 S8 monofilamentary wire at 4.2 K. which was experimentally observed as a prestrain in an Ic vs. ε experiment, was simulated with the calculation of the thermal stress distribution using a triaxial elastic stress model. The occurrence of different prestress conditions, due to the choice of different barrier materials (Ta, Nb, and Mo) and as consequence of a varying reinforcing stainless steel content, was investigated by calculations and compared with experimental results. The change of the stress state in the filament with external axial stress shows a significant amount of hydrostatic stress even at the Jc maximum, which explains the observed degradation of superconductivity. For the presently used Chevrel-phase wire configurations with the unfavorable thermal expansion of the barrier materials, the hydrostatic stress component, e.g. the radial stress in the filament. is important for achieving a good bonding at the layer interfaces and creating the wanted prestress in the filament. If no alternative methods and materials for the barrier are found in the future, enhanced mechanical wire properties can only be obtained by a reduced layer thickness of the barrier, which would additionally improve the overall critical current density of the wire
  • Keywords
    critical current density (superconductivity); internal stresses; lead compounds; molybdenum compounds; type II superconductors; 4.2 K; Chevrel-phase; PbMo6S8 wire; PbMo6S8-Mo; PbMo6S8-Nb; PbMo6S8-Ta; bonding; critical current density; degradation; hydrostatic stress; monofilamentary wire; precompression; prestrain; reinforcing stainless steel content; stress distribution; superconducting filament; thermal expansion; thermal stress distribution; triaxial elastic stress model; Bonding; Building materials; Niobium; Steel; Superconducting materials; Superconductivity; Thermal degradation; Thermal expansion; Thermal stresses; Wire;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.133336
  • Filename
    133336