Title :
Magnetically induced vibration in a permanent-magnet brushless DC motor with symmetric pole-slot configuration
Author_Institution :
Hitachi Global Storage Technol. Inc., San Jose, CA, USA
fDate :
6/1/2005 12:00:00 AM
Abstract :
The paper reports a numerical and experimental study of magnetically induced vibration associated with rotor/stator eccentricity and imperfect magnetization for 8-pole 6-slot symmetric brushless dc (BLDC) motors. Magnetic forces and cogging torque are calculated for various slot angles by using the finite-element method (FEM). The results show that there is an optimal slot angle for minimum cogging torque, but this slot angle is not optimal for reducing magnetic forces. In the idle acoustics test, the motors with reduced magnetic forces show clear reduction at the expected frequencies while the motors with minimum cogging torque show no change at the cogging torque frequency, which implies unbalanced magnetic forces have greater effect on actual vibration of the spindle motor than cogging torque. The results show that the proper direction in motor design is to reduce unbalanced magnetic forces when both cogging torque and unbalanced magnetic forces are not achievable simultaneously.
Keywords :
brushless DC motors; finite element analysis; magnetic forces; permanent magnet motors; torque; vibrations; 8-pole 6-slot symmetric brushless dc motors; BLDC motors; finite-element method; imperfect magnetization; magnetically induced vibration; minimum cogging torque; optimal slot angle; permanent-magnet brushless DC motor; rotor eccentricity; stator eccentricity; symmetric pole-slot configuration; unbalanced magnetic forces; Brushless DC motors; Brushless motors; DC motors; Forging; Frequency; Magnetic forces; Magnetization; Rotors; Stators; Torque; Brushless dc motor; cogging torque; eccentricity; magnetically induced vibration; unbalanced magnetic force;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2005.848321