Title :
Neutron Diffraction Study on Prebending Effects for Bronze Route

Wires Without Reinforcement
Author :
Awaji, Satoshi ; Oguro, Hidetoshi ; Nishijima, Gen ; Badica, Petre ; Watanabe, Kazuo ; Harjo, Stefanus ; Kamiyama, Takashi ; Katagiri, Kazumune
Author_Institution :
High Field Lab. for Supercond. Mater., Tohoku Univ., Sendai
fDate :
6/1/2006 12:00:00 AM
Abstract :
The critical current, upper critical field and critical temperature of bronze route Nb3Sn commercial wires are enhanced by applying a repeated bending strain at room temperature, i.e., "prebending strain". In order to investigate the prebending effects from a viewpoint of a residual strain, axial and lateral residual strains were evaluated directly by neutron diffraction at room temperature. We found that the axial residual strain changes from -0.10% to 0.02 % but the lateral one is unchanged by applying a prebending strain of 0.5% for an ordinary bronze route (Nb,Ti)3Sn wires without reinforcement. Hence, in the case of the ordinary Nb3Sn wires without reinforcement, the prebending treatment modifies only the axial residual strain states independently to the lateral one, although it may depend on the wire structure. The critical current properties under the axial tensile strain suggest that the axial residual strain is reduced by about 0.11% but the radial residual strain unchanged by the prebending treatment of 0.5%. This is consistent with the results of the neutron diffraction
Keywords :
bending strength; critical current density (superconductivity); internal stresses; neutron diffraction; niobium alloys; superconducting critical field; superconducting materials; superconducting transition temperature; tensile strength; tin alloys; 293 to 298 K; Nb3Sn; axial residual strains; axial tensile strains; bronze route wires; critical current; critical field; critical temperature; lateral residual strains; neutron diffraction; prebending strain; wire structure; Capacitive sensors; Critical current; Diffraction; Magnetic field induced strain; Neutrons; Superconducting materials; Temperature; Tensile strain; Tin; Wires; Critical current; neutron diffraction; residual strain;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2006.870005