DocumentCode :
2180243
Title :
Modeling and Simulation of RF MEMS resonator in a hierarchical approach
Author :
Mungurwadi, Vaishali B. ; Wali, Uday V.
Author_Institution :
B.V.B. Coll. of Eng. & Technol., Karnataka
fYear :
2006
fDate :
Oct. 18 2006-Sept. 20 2006
Firstpage :
1175
Lastpage :
1178
Abstract :
This paper discusses the modeling and simulation of RF microresonator using comb drive actuator and folded flexure beam in hierarchical methodology. Without models, one cannot simulate and evaluate the design. Modeling of electrostatic forces, mechanics, coupled electromechanics, and damping use commercial finite-element and boundary-element tools available to construct reduced-order behavioural models in a conventional approach. Parameterized models are needed for iterative design and reuse. Physical models with geometric and material-property parameters with adequate accuracy are available for a set of simple low-level elements (beams, comb drives, etc.). Design parameters are preserved if the higher-level components can be represented as an interconnected set of parameterized low-level elements. In our work we have designed RF microresonator (higher level component) using comb drive and folded flexure beam as subcomponents which in turn use lower level components such as beams, anchors and gap. Such a hierarchical approach simplified the construction of the model as an interconnection of various low level components. The mechanical simulations are carried out for displacement and frequency response using SUGAR 2.0 on MATLAB and C environment
Keywords :
boundary-elements methods; electrostatics; finite element analysis; iterative methods; microactuators; micromechanical resonators; RF MEMS resonator; RF microresonator; boundary-element tools; comb drive actuator; coupled electromechanics; electrostatic forces; finite-element tools; folded flexure beam; frequency response; iterative design; material-property parameters; reduced-order behavioural models; Actuators; Damping; Drives; Electrostatics; Finite element methods; Mathematical model; Microcavities; Radio frequency; Radiofrequency microelectromechanical systems; Structural beams;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications and Information Technologies, 2006. ISCIT '06. International Symposium on
Conference_Location :
Bangkok
Print_ISBN :
0-7803-9741-X
Electronic_ISBN :
0-7803-9741-X
Type :
conf
DOI :
10.1109/ISCIT.2006.339965
Filename :
4141404
Link To Document :
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