DocumentCode :
564761
Title :
Reduction of initial stress stiffening by topology optimization
Author :
Philippine, M.A. ; Sigmund, O. ; Rebeiz, G.M. ; Kenny, T.W.
Author_Institution :
Stanford Univ., Stanford, CA, USA
fYear :
2012
fDate :
25-27 April 2012
Firstpage :
148
Lastpage :
153
Abstract :
Topology optimization is a rigorous method of obtaining non-intuitive designs. We use it to obtain a capacitive RF switch that stiffens little in response to an increase of the in-plane biaxial stresses that typically develop during MEMS fabrication. The actuation voltage is closely related to the membrane´s stiffness, and is more stable for a stress insensitive switch. We employ the Solid Isotropic Material with Penalization (SIMP) method with the Method of Moving Asymptotes (MMA) and a robust formulation to minimize the ratio between the compliance at a low stress level and that at a high stress level. We include a volume constraint and a compliance constraint. Topology optimized designs are compared to an intuitively-designed RF switch. The switches contain similar features. The compliance constraint is varied such that the topology optimized switch performance approaches the intuitively-designed one. Finally, the importance of the compliance constraint and of the robust formulation are discussed.
Keywords :
elastic constants; microfabrication; microswitches; optimisation; topology; MEMS fabrication; MMA; SIMP method; actuation voltage; capacitive RF switch; compliance constraint; initial stress stiffening; inplane biaxial stress; intuitively-designed RF switch; membrane stiffness; method of moving asymptotes; nonintuitive designs; robust formulation; solid isotropic material with penalization method; stress insensitive switch; stress level; topology optimization; Finite element methods; Optimization; Sensitivity; Solids; Stress; Switches; Topology;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Design, Test, Integration and Packaging of MEMS/MOEMS (DTIP), 2012 Symposium on
Conference_Location :
Cannes
Print_ISBN :
978-1-4673-0785-7
Type :
conf
Filename :
6235301
Link To Document :
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