DocumentCode :
17708
Title :
Modeling and Analysis of a New Cylindrical Magnetic Levitation Gravity Compensator With Low Stiffness for the 6-DOF Fine Stage
Author :
He Zhang ; Baoquan Kou ; Yinxi Jin ; Hailin Zhang
Author_Institution :
Dept. of Electr. Eng., Harbin Inst. of Technol., Harbin, China
Volume :
62
Issue :
6
fYear :
2015
fDate :
Jun-15
Firstpage :
3629
Lastpage :
3639
Abstract :
A novel cylindrical magnetic levitation gravity compensator (MLGC) with low-stiffness and vacuum-compatible characteristics is proposed in this paper. This compensator can be used as the out-of-plane electromagnetic actuator for the 6-DOF fine stage in certain high-precision positioning applications, for example, the wafer stage in a lithography machine. Compared with conventional actuators such as the electromagnet and voice coil motor, the heat and the resulting temperature rise that degrade the stage positioning accuracy can be reduced by using passive magnetic gravity compensation. Based on the equivalent current method, the analytical equations for the magnetic field, static levitation force, vertical stiffness, and dynamic levitation force are derived. However, the static levitation force-vertical displacement characteristic from the traditional analytical model is not sufficiently accurate for the low-stiffness applications when compared with the finite-element model. Therefore, the main reason for the model error is analyzed, and an improved semianalytical method based on a single-point magnetostatic field simulation is proposed. This method offers a theoretical basis for the analysis and design of the low-stiffness MLGC.
Keywords :
electromagnetic actuators; finite element analysis; magnetic fields; magnetic levitation; DOF fine stage; MLGC; cylindrical magnetic levitation gravity compensator analysis; dynamic levitation force; equivalent current method; finite element model; high-precision positioning applications; low stiffness characteristics; magnetic field; out-of-plane electromagnetic actuator; passive magnetic gravity compensation; single-point magnetostatic field simulation; static levitation force; vacuum compatible characteristics; vertical displacement characteristic; vertical stiffness; Analytical models; Coils; Force; Magnetic flux; Magnetic levitation; Stators; Electromagnetic modeling; gravity compensator; low stiffness; magnetic levitation; vibration isolation;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2014.2365754
Filename :
6939706
Link To Document :
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