Title :
Three-Dimensional Electromagnetic Field Calculation and Analysis of Axial–Radial Flux-Type High-Temperature Superconducting Synchronous Motor
Author :
Li Weili ; Qiu Hongbo ; Yi Ran ; Zhang Xiaochen ; Li Liyi
Author_Institution :
Coll. of Electr. & Electron. Eng., Harbin Univ. of Sci. & Technol., Harbin, China
Abstract :
With the development of the high-temperature superconducting material, the high-temperature superconducting machine becomes the very important research direction in the electrical machine domain. It integrates the advantages of high-power density, small machine size, and zero resistance of the superconducting windings. In this paper, taking an axial-radial flux-type high-temperature superconducting permanent-magnet synchronous motor (ARFTHTSPMSM) as an example, based on the investigations about the configuration characteristics and the operation principles of such machine, the mathematical model for the 3-D transient electromagnetic field was established. The magnetic field in this motor was analyzed by using the time-stepping finite-element method. In addition, the distribution characteristics of the magnetic flux in the air gap and ferromagnetic bridge were discussed, and then, the variations of the air-gap flux density, ferromagnetic bridge flux density, and non-load back electromotive force were analyzed when the motor is operating at different axial magnetic motive force. Both the theoretical analysis results and the experimental data indicate the notable advantage of adjustable excitation in such machine. Finally, based on the aforementioned analysis, the rotor eddy current losses were calculated, and their distribution characteristics were studied when the motor is operating at the starting process and the steady state, respectively. The obtained conclusions may provide useful reference for the design and research on the ARFTHTSPMSM.
Keywords :
air gaps; computational electromagnetics; eddy current losses; finite element analysis; high-temperature superconductors; machine windings; permanent magnet motors; superconducting machines; synchronous motors; 3D transient electromagnetic field; ARFTHTSPMSM design; air-gap flux density; axial magnetic motive force; axial-radial flux-type high-temperature superconducting permanent-magnet synchronous motor; electrical machine domain; ferromagnetic bridge; ferromagnetic bridge flux density; high-power density; high-temperature superconducting machine; high-temperature superconducting material; magnetic flux distribution characteristics; mathematical model; nonload back electromotive force analysis; rotor eddy current losses; small machine size; starting process; steady-state process; superconducting windings; three-dimensional electromagnetic field calculation; time-stepping finite-element method; zero resistance; Bridge circuits; High temperature superconductors; Magnetic circuits; Permanent magnet motors; Rotors; Superconducting magnets; Synchronous motors; Axial–radial flux-type superconducting synchronous motor (ARFTHTSPMSM); eddy current losses; electromagnetic field; high-temperature superconductor;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2012.2232923