Title :
Levitation forces control by current vector orientation for a bearingless motor with hybrid rotor structure
Author :
Wang, Baoguo ; Wang, Zheng ; Wang, Fengxiang
Author_Institution :
Sch. of Electr. Eng., Shenyang Univ. of Technol., China
Abstract :
Because levitation forces in x-and y-direction for a bearingless motor with hybrid rotor structure are coupled, the decoupling method is needed to independently control the forces. This paper presents levitation forces control strategy through current vector orientation. By using transformation of two sets of winding phase currents in x-y frame to new variables in a d-q rotating reference frame, the levitation forces can simply be expressed by the new variables. Then estimating spatial rotating angle in torque winding current vector and locking d-axis in d-q rotating reference frame on the current vector, decoupled control of levitation forces can be obtained through current vector control in levitation forces winding. Finally, a practical control system of levitation forces for a bearingless motor with hybrid rotor structure based on DSP TMS320C32 and Xilinx CPLD has been completed and the tested results show that the proposed control strategy is feasible.
Keywords :
digital signal processing chips; electric current; electric motors; force control; machine vector control; magnetic levitation; power engineering computing; rotors; stators; torque; DSP TMS320C32; Xilinx CPLD; bearingless motor; current vector orientation; decoupling method; hybrid rotor structure; levitation force control; spacial rotating angle estimation; torque winding; winding phase currents; Control systems; Couplings; Electric variables control; Force control; Levitation; Permanent magnets; Reluctance motors; Rotors; Stator windings; Torque control;
Conference_Titel :
Electrical and Computer Engineering, 2003. IEEE CCECE 2003. Canadian Conference on
Print_ISBN :
0-7803-7781-8
DOI :
10.1109/CCECE.2003.1226421