Flux pinning scaling behaviors of ultrafine multifilamentary NbTi superconducting wires with Nb island-type artificial pins
Osuke Miura, C. Tei, Daisuke Ito, S. Endo
Abstract
Osuke Miura, C. Tei, Daisuke Ito, S. Endo
Abstract
In order to engineer composites for high critical current densities Jc, the establishment of an artificial pinning center (APC) composite technique based on the flux pinning mechanism is desired. For that purpose, we investigated temperature and magnetic field scaling behaviors on the flux pinning properties of several kinds of Nb island-type artificial pin wires. The temperature and magnetic field dependence of bulk pinning force densities Fp was evaluated from magnetization curves at 25-7.5K to exclude influences due to external effects such as filament sausaging. As a result it was found that the scaling law holds true in a wide range of temperatures and magnetic fields for all of the APC specimens, which is in contrast to /spl alpha/-Ti specimens. This result suggests that Nb island-type pinning is much stronger than ribbon-like /spl alpha/-Ti pinning.
OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
In order to engineer composites for high critical current densities Jc, the establishment of an artificial pinning center (APC) composite technique based on the flux pinning mechanism is desired. For that purpose, we investigated temperature and magnetic field scaling behaviors on the flux pinning properties of several kinds of Nb island-type artificial pin wires. The temperature and magnetic field dependence of bulk pinning force densities Fp was evaluated from magnetization curves at 25-7.5K to exclude influences due to external effects such as filament sausaging. As a result it was found that the scaling law holds true in a wide range of temperatures and magnetic fields for all of the APC specimens, which is in contrast to /spl alpha/-Ti specimens. This result suggests that Nb island-type pinning is much stronger than ribbon-like /spl alpha/-Ti pinning.
Key concepts: Flux pinning, Pinning force, Condensed matter physics, Materials science, Superconductivity, Type-II superconductor, Scaling, Ribbon