Title :
Transverse and longitudinal resistivities in NbTi multifilamentary strands with Cu and CuMn matrices
Author :
Sumption, M.D. ; Pyun, D.S. ; Collings, E.W.
Author_Institution :
Battelle Memorial Inst., Columbus, OH, USA
fDate :
3/1/1993 12:00:00 AM
Abstract :
Transverse and longitudinal resistivities have been measured for a pair of multifilamentary strands with filament diameters of 2 mu m, interfilamentary spacing to filament diameter ratio of 0.19, and about 5000 filaments. One of these strands has a Cu matrix and the other has a CuMn matrix. 4.2-K transverse resistivities were extracted from the per cycle eddy current loss and also the magnetization of samples of various twist pitches. Longitudinal resistivities were measured with a four-terminal method at T=12 K. These results are interpreted in terms of size, proximity, and current-path effects. It is found that size effects significantly enhance both the transverse and longitudinal resistivities of the Cu matrix material, and that current-path effects significantly decrease the transverse resistivity of the CuMn material. Additionally, the proximity effect causes the resistivity of the Cu matrix to vary with magnetic field. Resistivity for the Cu matrix at high fields is about 0.6-0.8 that of the CuMn.<>
Keywords :
eddy current losses; electrical conductivity of crystalline metals and alloys; magnetisation; superconducting cables; superconducting magnets; type II superconductors; 2 K; 2 micron; 4.2 K; Cu matrix; CuMn matrices; NbTi; current-path effects; eddy current loss; four-terminal method; longitudinal resistivities; magnetization; multifilamentary strands; proximity effect; transverse resistivities; Coils; Conductivity; Copper; Eddy currents; Frequency; Magnetic field measurement; Magnetic materials; Niobium compounds; Proximity effect; Titanium compounds;
Journal_Title :
Applied Superconductivity, IEEE Transactions on