For electrical and thermal stability the Nb3Sn compound is distributed into fine filaments (up to about 50 micrometers diameter) and embedded in a resistive matrix. Nb3Sn formation requires a solid state diffusion reaction at high temperature, which causes Sn gradient inside the filaments. It is well known that the critical parameters vary with composition (Sn content) and strain state. In this work the relation between compositional variations and strain is investigated: Nb3Sn wires are studied taking into consideration non-homogeneous filaments. A finite element discretization fine enough to take into consideration Sn gradient would result in a number of unknowns which is far beyond the capacity of nowadays computers. Therefore a thermo-mechanical model is developed, based on a self consistent homogenisation, suitably developed to deal with the material non-linearity and the coupling between the thermal and mechanical field. In this way the equivalent homogeneous properties are obtained and the analysis of the wires becomes possible. An appropriate unsmearing technique gives finally the strain state in the real, not homogenized materials.

A Thermo-mechanical Model for Nb3Sn Filaments and Wires

BOSO, DANIELA;SCHREFLER, BERNHARD
2006

Abstract

For electrical and thermal stability the Nb3Sn compound is distributed into fine filaments (up to about 50 micrometers diameter) and embedded in a resistive matrix. Nb3Sn formation requires a solid state diffusion reaction at high temperature, which causes Sn gradient inside the filaments. It is well known that the critical parameters vary with composition (Sn content) and strain state. In this work the relation between compositional variations and strain is investigated: Nb3Sn wires are studied taking into consideration non-homogeneous filaments. A finite element discretization fine enough to take into consideration Sn gradient would result in a number of unknowns which is far beyond the capacity of nowadays computers. Therefore a thermo-mechanical model is developed, based on a self consistent homogenisation, suitably developed to deal with the material non-linearity and the coupling between the thermal and mechanical field. In this way the equivalent homogeneous properties are obtained and the analysis of the wires becomes possible. An appropriate unsmearing technique gives finally the strain state in the real, not homogenized materials.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11577/1555473
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