Title :
A methodology and model for the pull-in parameters of magnetostatic actuators
Author :
Nemirovsky, Yael ; Zelniker, I. ; Degani, Ofir ; Sarusi, Gilaad
Author_Institution :
Dept. of Electr. Eng., Technion - Israel Inst. of Technol., Haifa, Israel
Abstract :
Magnetostatic actuators exhibit bistability similarly to the pull-in phenomena of electrostatic actuators. In this paper a methodology and model for the extraction of the magnetic Pull-In parameters of magnetostatic actuators are derived. The flux-controlled magnetostatic actuator is analyzed based on the energy representation and the magnetomotive force-controlled magnetostatic actuator is analyzed in the thermodynamic potential energy (or co-energy) representation. An algebraic equation, referred to as the magnetic Pull-In equation, for each of the two cases (flux-controlled and magnetomotive force-controlled actuators) is derived. By solving these Pull-In equations either analytically or numerically, the magnetic Pull-In parameters are obtained. Several case studies, covering displacement and torsion magnetic actuators, are presented and analyzed, illustrating the usefulness of the proposed methodology, its relative simplicity as well as the adaptability and practical usage in wide spectrum of magnetic actuators. [1425].
Keywords :
electromagnetic actuators; linear algebra; magnetic devices; magnetostatics; microactuators; algebraic equation; electrostatic actuators; flux-controlled actuator; magnetic actuators; magnetic pull-in equation; magnetomotive force-controlled actuators; magnetostatic actuators; pull-in parameters; thermodynamic potential energy representation; Electrostatic actuators; Equations; Magnetic analysis; Magnetic flux; Magnetostatics; Micromechanical devices; Potential energy; Robustness; Silicon; Thermodynamics; Actuators; magnetic; magnetostatic; model; pull-in;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2005.859074