Title :
Superconductor-magnet bearings with inherent stability and velocity-independent drag torque
Author :
Lee, Eunjeong ; Ma, Ki Bui ; Wilson, Thomas L. ; Chu, Wei-Kan
Author_Institution :
Texas Center for Supercond., Houston Univ., TX, USA
Abstract :
A hybrid superconductor magnet bearing system has been developed based on passive magnetic levitation and the flux pinning effect of high-temperature superconductivity. The rationale lies in the unique capability of a high-temperature superconductor (HTS) to enhance system stability passively without power consumption. Characterization experiments have been conducted understand its dynamic behavior and to estimate required motor torque for its driving system design. These experiments show that the hybrid HTS-magnet bearing system has a periodic oscillation of drag torque due mainly to the nonuniform magnetic field density of permanent magnets. Furthermore, such a system also suffers from a small superimposed periodic oscillation introduced by the use of multiple HTS disks rather than a uniform annulus of HTS material. The magnitude of drag torque is velocity independent and very small. These results make this bearing system appealing for high-speed application. Finally, design guidelines for superconducting bearing systems are suggested based on these experimental results
Keywords :
drag; flux pinning; high-temperature superconductors; magnetic bearings; magnetic levitation; permanent magnets; stability; superconducting magnets; torque; flux pinning effect; high-temperature superconductivity; high-temperature superconductor; hybrid superconductor magnet bearing system; inherent stability; lunar telescope mount; multiple HTS disks; nonuniform magnetic field density; passive magnetic levitation; periodic oscillation; permanent magnets; power consumption; superimposed periodic oscillation; velocity-independent drag torque; Energy consumption; Flux pinning; High temperature superconductors; Magnetic flux; Magnetic levitation; Permanent magnet motors; Stability; Superconducting magnets; Superconductivity; Torque;
Conference_Titel :
Advanced Intelligent Mechatronics, 1999. Proceedings. 1999 IEEE/ASME International Conference on
Conference_Location :
Atlanta, GA
Print_ISBN :
0-7803-5038-3
DOI :
10.1109/AIM.1999.803276