Title :
Magnetic suspension force of Ag2O doped BiPbSrCaCuO superconductor
Author_Institution :
Depts. of Electron. Inf. & Commun. Eng., Sun Moon Univ., Chung Nam, South Korea
fDate :
6/1/2003 12:00:00 AM
Abstract :
Magnetic flux measurements of a toroidal magnet revealed a concave shaped field distribution with a single minimum value and a field along the axis of the torus at the point where the field was reversed. The nonlinear magnetic field of the toroidal magnet perpendicular to the Ag2O doped superconducting disk sample with the trapped magnetic flux distorted the field line distribution. As a result, the interaction force between the magnet and sample exhibited regions of repulsive, , attractive, , and finally repulsive force. The asymmetrical concave shaped force pattern along the axis with two force points indicates that the magnetic force exerted form the sample changed direction which resulted in the transition from repulsive force to attractive force at the force point, and the force becomes repulsive again beyond the second force point as the distance along the axis increases. The lateral stability of the suspended sample under the toroidal magnet is provided by the characteristics of the symmetrical nature of the field line with respect to the axis of the magnet. The magnetic moment of an undoped and 2% Ag2O doped sample was shown to be m=0.043 emu and 0.06 emu, respectively. The measured suspension force exerted form the doped sample agreed well with the suspension force calculated from magnetostatic force distribution.
Keywords :
bismuth compounds; calcium compounds; flux pinning; high-temperature superconductors; lead compounds; magnetic flux; magnetic levitation; silver compounds; strontium compounds; Ag2O doped BiPbSrCaCuO superconductor; BiPbSrCaCuO:Ag2O; asymmetrical concave shaped force; attractive force; concave shaped field distribution; field; flux measurements; magnetic moment; magnetic suspension force; magnetostatic force distribution; repulsive force; superconducting disk; toroidal magnet; trapped magnetic flux; Force measurement; Magnetic field measurement; Magnetic flux; Magnetic levitation; Magnetostatics; Nonlinear distortion; Nonlinear magnetics; Shape measurement; Superconducting magnets; Toroidal magnetic fields;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2003.812115