Title :
Electrical design and winding selection for a bearingless Axial-Force/Torque Motor
Author :
Bauer, Walter ; Amrhein, Wolfgang
Author_Institution :
Inst. of Electr. Drives & Power Electron., Johannes Kepler Univ., Linz, Austria
Abstract :
The Axial-Force/Torque Motor is a completely new type of bearingless drive. The presented Lorentz-force type actuator features a compact and integrated design using a very specific permanent magnet excitation system together with concentric non-overlapping air gap windings. The end-windings of the bent air-core coils, shaped in circumferential rotor direction, provide active axial magnetic suspension forces. No additional (bearing) coils are thus necessary for stable axial levitation. The four remaining degrees of freedom of the rotor are stabilized by passive magnetic ring bearings. This article provides a comprehensive overview of the complex practical design process of single-phase Axial-Force/Torque Motors. The electrical design and especially the winding selection is a very crucial part of the motor design. Levitation force and drive torque specifications must both be fulfilled concurrently at rated rotor speed using only one common winding system, while respecting several electrical, thermal and mechanical boundaries likewise. Provided, that the air gap winding is designed properly, a sophisticated (closed-loop) drive control strategy permits the autonomous manipulation of both control variables, drive torque and levitation force. As conclusion of this article, a short presentation of the experimental setup highlights possible fields of application for the proposed drive concept.
Keywords :
air gaps; closed loop systems; machine control; machine windings; magnetic fluids; motor drives; permanent magnet motors; torque motors; Lorentz-force type actuator; axial magnetic suspension forces; bearingless axial-force-torque motor drives; bent air-core coils; circumferential rotor direction; closed-loop drive control; common winding system; concentric nonoverlapping air gap windings; control variables; degrees of freedom; drive control strategy; drive torque specifications; electrical design; end-windings; levitation force; mechanical boundary; motor design; passive magnetic ring bearings; permanent magnet excitation system; rotor speed; stable axial levitation; thermal boundary; winding selection; Coils; Force; Magnetic levitation; Permanent magnet motors; Rotors; Torque; Windings; Bearingless drive; Lorentz force; air gap winding; air-core coil motor; magnetic bearing; magnetic levitation;
Conference_Titel :
Power Electronics, Electrical Drives, Automation and Motion (SPEEDAM), 2012 International Symposium on
Conference_Location :
Sorrento
Print_ISBN :
978-1-4673-1299-8
DOI :
10.1109/SPEEDAM.2012.6264458