Multiscale modeling of the anisotropic electrical conductivity of architectured and nanostructured Cu-Nb composite wires and experimental comparison
Article dans une revue avec comité de lecture
Date
2017Journal
Acta MaterialiaAbstract
Nanostructured and architectured copper niobium composite wires are excellent candidates for the generation of intense pulsed magnetic fields (> 90T) as they combine both high electrical conductivity and high strength. Multi-scaled Cu-Nb wires can be fabricated by accumulative drawing and bundling (a severe plastic deformation technique), leading to a multiscale, architectured and nanostructured microstructure providing a unique set of properties. This work presents a comprehensive multiscale study to predict the anisotropic effective electrical conductivity based on material nanostructure and architecture. Two homogenization methods are applied: a mean-field theory and a full-field approach. The size effect associated with the microstructure refinement is taken into account in the definition of the conductivity of each component in the composites. The multiscale character of the material is then accounted for through an iterative process. Both methods show excellent agreement with each other. The results are further compared, for the first time, with experimental data obtained by the four-point probe technique, and also show excellent agreement. Finally, the qualitative and quantitative understanding provided by these models demonstrates that the microstructure of Cu-Nb wires has a significant effect on the electrical conductivity
Files in this item
Related items
Showing items related by title, author, creator and subject.
-
Article dans une revue avec comité de lectureGU, T.; MEDY, J. R.; KLOSEK, Vincent; CASTELNAU, Olivier; FOREST, Samuel; HERVÉ-LUANCO, Eveline; LECOUTURIER-DUPOUY, F.; PROUDHON, Henry; RENAULT, Pierre Olivier; THILLY, Ludovic; VILLECHAISE, Patrick (Elsevier, 2019)Nanostructured and architectured copper niobium composite wires are excellent candidates for the generation of intense pulsed magnetic fields ( 100T) as they combine both high strength and high electrical conductivity. ...
-
Article dans une revue avec comité de lectureGU, TANG; CASTELNAU, Olivier; HERVE-LUANCO, E.; LECOUTURIER, F; PROUDHON, H; THILLY, L (Elsevier, 2017)Nanostructured and architectured copper niobium composite wires are excellent candidates for the generation of intense pulsed magnetic fields (> 90T) as they combine both high strength and high electrical conductivity. ...
-
Article dans une revue avec comité de lectureGU, T; HERVE-LUANCO, E; PROUDHON, H; THILLY, L; DUBOIS, J.-B.; LECOUTURIER, F; CASTELNAU, Olivier; FOREST, S (EDP Sciences, 2015)Les fils composites nanostructurés et architecturés cuivre-niobium, qui sont de bons candidats pour la génération de champs magnétiques intenses, allient une limite d’élasticité élevée et une excellente conductivité ...
-
Article dans une revue avec comité de lectureFAURIE, D; DJEMIA, P; CASTELNAU, Olivier; BRENNER, Renald; BELLIARD, L; GOUDEAU, P; RENAULT, P.-O; LE BOURHIS, E (Elsevier, 2015)We show in this paper by using a two-scale transition model that the elastic anisotropy of a thin film specimen can be tuned by appropriate stacking design. The anisotropic behaviour is illustrated for two monophase thin ...
-
Article dans une revue avec comité de lectureLE BOURLOT, C; LANDOIS, P; DJAZIRI, S; RENAULT, P.-O; LE BOURHIS, E; GOUDEAU, P; MAYNE-L’HERMITE, M; BACROIX, Brigitte; PINAULT, M; FAURIE, D; CASTELNAU, Olivier; LAUNOIS, P; ROUZIERE, S (International Union of Crystallography, 2012)A prototype X-ray pixel area detector (XPAD3.1) has been used for X-ray diffraction experiments with synchrotron radiation. The characteristics of this detector are very attractive in terms of fast readout time, high dynamic ...