DocumentCode
986237
Title
Improvements on winding flux models for a slotless self-bearing motor
Author
Ren, Zhaohui ; Stephens, Lyndon S. ; Radun, Arthur V.
Author_Institution
Mohawk Innovative Technol., Inc, Albany, NY, USA
Volume
42
Issue
7
fYear
2006
fDate
7/1/2006 12:00:00 AM
Firstpage
1838
Lastpage
1848
Abstract
For a large-scale slotless permanent-magnet self-bearing motor actuator, finite-element analysis (FEA) indicates a significant difference from the previous simple winding flux model. In this paper, we first derive a general winding current distribution. We use and compare three analytical methods to calculate the air gap field produced by the windings when only torque is required. Each of the first two solves one homogeneous Laplace´s equation with the current source incorporated into a harmonic boundary condition, in polar and Cartesian coordinates, respectively. The good agreement between these two allows the third method to treat the current source separately and solve one nonhomogeneous and one homogeneous Laplace´s equations simultaneously in two subregions, simply using the unwrapped geometry in Cartesian coordinates. The result from the two-layer model matches the FEA prediction for this particular actuator very well and it is thus more accurate to model the thick windings as a separate source layer. We propose a simple approach to include the interference of the magnetic fields due to the segment currents whenever a bearing force is required, which was completely neglected in all the previous models. The approach is quite accurate, as shown by the corresponding FEA result.
Keywords
Laplace equations; current distribution; electromagnetic actuators; finite element analysis; machine windings; magnetic bearings; magnetic flux; permanent magnet motors; Cartesian coordinates; FEA; Laplace equation; air gap field; finite-element analysis; harmonic boundary condition; magnetic fields; polar coordinates; self-bearing motor actuator; slotless permanent-magnet motor actuator; slotless self-bearing motor; winding current distribution; winding flux models; Actuators; Boundary conditions; Current distribution; Finite element methods; Geometry; Interference; Laplace equations; Large-scale systems; Predictive models; Torque; Magnetic bearing; magnetic field analysis; permanent-magnet motor; slotless self-bearing motor;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2006.874187
Filename
1644901
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