DocumentCode
2795913
Title
Electromagnetic analysis of a novel Lorentz-force-driven planar motor via 3D FEM calculation and experimental verification
Author
Lei, Jin ; Chen, Xuedong ; Luo, Xin
Author_Institution
Key Lab. of Transients in Hydraulic Machinery, Wuhan Univ., Wuhan, China
fYear
2011
fDate
15-17 July 2011
Firstpage
1285
Lastpage
1288
Abstract
Lorentz-force-driven planar motor, which consists of three linear Lorentz motors in such an integrated configuration, can achieve high-speed and high-precision motion with nanometer positioning accuracy. The stator and mover of the Lorentz planar motor are coupled by electromagnetic forces without mechanical contact. Owing to end effect, magnetic leakage field, magnetic field coupling and material non-linear, magnetic field distribution in airgap is non-uniform. In this paper, 3-D electromagnetic finite element model of the Lorentz force-driven planar motor is established in order to achieve more precise simulation results. The magnetic field distribution in airgap and the relations of currents, displacements and Lorentz forces are obtained by Maxwell equations and virtual work principle. These simulation results are in agreement with those of the experiments, which presents the FE model and simulation results are reasonable and feasible. It is helpful to structural optimization and control design of ultra-precision drive machine in next work.
Keywords
Maxwell equations; air gaps; electromagnetic forces; finite element analysis; linear motors; magnetic fields; magnetic leakage; 3D FEM calculation; Lorentz forces; Lorentz-force driven planar motor; Maxwell equations; airgap; control design; electromagnetic forces; end effect; finite element model; high-precision motion; integrated configuration; linear Lorentz motors; magnetic field coupling; magnetic field distribution; magnetic leakage field; material nonlinear; nanometer positioning accuracy; structural optimization; ultra-precision drive machine; virtual work principle; Atmospheric modeling; Coils; Finite element methods; Lorentz covariance; Magnetic fields; Magnetic flux density; Finite element method; Lorentz force; Lorentz-force-dirven planar motor; Virtual work principle;
fLanguage
English
Publisher
ieee
Conference_Titel
Mechanic Automation and Control Engineering (MACE), 2011 Second International Conference on
Conference_Location
Hohhot
Print_ISBN
978-1-4244-9436-1
Type
conf
DOI
10.1109/MACE.2011.5987177
Filename
5987177
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