Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8163893 | Physica C: Superconductivity and its Applications | 2018 | 5 Pages |
Abstract
We have proposed new reinforcement structures using an aluminum alloy ring to the annular REBaCuO bulks applicable to compact and cryogen-free 400â¯MHz (9.4 T) nuclear magnetic resonance (NMR) spectrometer using a numerical simulation of mechanical stress. The thermal compressive stress, Ïθcool, which was applied to the annular bulks during cooling due to the difference of thermal expansion coefficient between bulk and aluminum alloy, became fairly enhanced at the surface of the uppermost bulk for the new reinforcement structures, compared to the conventional reinforcement with the same height as the annular bulk, in which the compressive Ïθcool value was reduced. During field-cooled magnetization (FCM), the electromagnetic hoop stress, ÏθFCM, became the maximum at the innermost edge of the uppermost ring bulk at intermediate time step. The actual total hoop stress, Ïθ (=â¯Ïθcoolâ¯+â¯ÏθFCM), due to both cooling and FCM processes was also analyzed and the new ring structures are fairly effective to reduce the Ïθ value and became lower than the fracture strength of the bulk. The new reinforcement structures have a possibility to avoid the fracture of the bulks and to realize a 400â¯MHz NMR spectrometer.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Condensed Matter Physics
Authors
H. Fujishiro, K. Takahashi, T. Naito, Y. Yanagi, Y. Itoh, T. Nakamura,