Title :
Analysis and Design of Passive Magnetic Bearing and Damping System for High-Speed Compressor
Author :
Jiancheng Fang ; Yun Le ; Jinji Sun ; Kun Wang
Author_Institution :
Sci. & Technol. on Inertial Lab., Beijing Univ. of Aeronaut. & Astronaut., Beijing, China
Abstract :
To provide a more reliable and low power consumption rotor support system for a high-speed compressor, a novel and compact magnetic bearing and damping system is proposed. It is composed of a cup-shaped rotor, an axial passive bearing of reluctance type outside the rotor cup, and a passive damper with Halbach magnet array inside the rotor cup, which not only can provide adequate stiffness, but also good damping ability for the rotor. To enhance the load and stability of the system, an analytical model, which can calculate the system stiffness and damping coefficient with significantly less computing time than the finite element method (FEM), is established. The effects of some important structure parameters on the system performance are discussed. Then, an optimal design method is proposed based on the above analysis. At last, an experimental setup has been developed and both static and dynamic performances have been tested. The experimental results show that the proposed system is capable of producing high axial stiffness and effective in suppressing the rotor vibration. The results also verify the validity of the analysis and design method.
Keywords :
compressors; damping; dynamic testing; elasticity; finite element analysis; magnetic bearings; power consumption; reliability; rotors; vibration control; FEM; Halbach magnet array; analytical model; cup-shaped rotor; damping coefficient; dynamic performances; finite element method; high axial stiffness; high-speed compressor; low power consumption rotor support system; optimal design method; passive damper; passive magnetic bearing system; passive magnetic damping system; reluctance type axial passive bearing; rotor cup; rotor vibration; static performances; structural parameters; system performance; system stability; system stiffness; Damping; Force; Magnetic flux; Magnetic levitation; Magnetomechanical effects; Rotors; Stators; Compressors; Halbach magnet array; magnetic bearing; magnetic damper;
Journal_Title :
Magnetics, IEEE Transactions on
Conference_Location :
5/2/2012 12:00:00 AM
DOI :
10.1109/TMAG.2012.2196443