DocumentCode :
1278253
Title :
Actuator gains for a toothless permanent-magnet self-bearing motor
Author :
Casemore, Mark A. ; Stephens, Lyndon S.
Author_Institution :
Dept. of Mech. Eng., Louisiana State Univ., Baton Rouge, LA, USA
Volume :
35
Issue :
6
fYear :
1999
fDate :
11/1/1999 12:00:00 AM
Firstpage :
4482
Lastpage :
4489
Abstract :
Permanent-magnet self-bearing motors provide independent bearing and motoring functionality in a single magnetic actuator. Typically, self-bearing motor designs use toothed stators to provide minimum reluctance flux paths that create the magnetic bearing forces necessary to support the rotor. These toothed designs can have significant cogging torque, rendering them ineffective for smooth torque applications such as those found in aerospace. A toothless permanent-magnet self-bearing motor can provide smooth torque production and adequate bearing force for low-gravity environments. Characterization of the open-loop gains for this actuator is necessary for linear controller development. In this paper simple algebraic equations are derived for the motoring and bearing current gains, and an analytical method is presented for computing the negative stiffness. The analytical method solves the Dirichlet boundary value problem (BVP) in the eccentric annulus for the magnetomotive force (MMF) in the air gap subject to harmonic boundary conditions. A conformal transformation to bipolar coordinates is used, yielding a BVP that is solvable by separation of variables. Expressions for the flux density, Maxwell force on the rotor, and the negative stiffness in terms of the MMF are presented. A sample problem is presented that illustrates the flux distribution in the air gap and the operating principals of this actuator type
Keywords :
boundary-value problems; electromagnetic actuators; machine bearings; machine theory; magnetic flux; permanent magnet motors; rotors; stators; torque; Dirichlet boundary value problem; Maxwell force; algebraic equations; bearing force; bipolar coordinates; conformal transformation; flux density; flux distribution; harmonic boundary conditions; linear controller development; low-gravity environments; magnetomotive force; negative stiffness; open-loop gains; single magnetic actuator; smooth torque production; toothless permanent-magnet self-bearing motor; Actuators; Magnetic analysis; Magnetic flux; Magnetic levitation; Magnetic separation; Permanent magnet motors; Reluctance motors; Rotors; Stators; Torque;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.809141
Filename :
809141
Link To Document :
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