DocumentCode :
1619996
Title :
A novel high precision electromagnetic flexure-suspended positioning stage with an eddy current damper
Author :
Lin, Chih-Hsien ; Hung, Shao-Kung ; Chen, Mei-Yung ; Li, Shan-Tsung ; Fu, Li-Chen
Author_Institution :
Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei
fYear :
2008
Firstpage :
771
Lastpage :
776
Abstract :
This paper proposes a novel planar electromagnetic-actuated positioning stage. The stage is suspended by the monolithic parallel flexure mechanism, which motion comes from the deformation of the flexure. A linear electromagnetic actuator which consists of a near-uniform magnetic field and four coils is designed and implementation to provide the propelling force for 3-DOF motions. In order to suppress the vibration of the flexure suspension mechanism, an eddy current damper is designed and integrated with the electromagnetic actuator. The non-contact damper is more advanced than the contact damper used in our previous researches. The design traveling range is 3 mm times 3 mm in planar motion. The experimental results show the vibration of the flexure mechanism could be suppressed by the designed eddy current damper. The results also show the regulation and tracking performance by a well-designed robust adaptive sliding mode controller, which can overcome the disturbance and modeling uncertainty and guarantee a satisfactory performance.
Keywords :
adaptive control; electromagnetic actuators; position control; robust control; suspensions (mechanical components); variable structure systems; vibration control; eddy current damper; high precision electromagnetic flexure-suspended positioning stage; linear electromagnetic actuator; monolithic parallel flexure mechanism; robust adaptive sliding mode controller; Coils; Damping; Eddy currents; Electromagnetic fields; Electromagnetic forces; Electromagnetic launching; Hydraulic actuators; Magnetic fields; Magnetic levitation; Shock absorbers; Lorentz force actuation; Precision motion control; eddy-current damper; parallel flexure mechanism; vibration suppression;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control, Automation and Systems, 2008. ICCAS 2008. International Conference on
Conference_Location :
Seoul
Print_ISBN :
978-89-950038-9-3
Electronic_ISBN :
978-89-93215-01-4
Type :
conf
DOI :
10.1109/ICCAS.2008.4694602
Filename :
4694602
Link To Document :
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