DocumentCode :
190093
Title :
Development of analytical models of T- and U-shaped cantilever-based MEMS devices for sensing and energy harvesting applications
Author :
Heinrich, S.M. ; Boudjiet, M.T. ; Thuau, D. ; Poulin, P. ; Ayela, C. ; Dufour, I.
Author_Institution :
Dept. of Civil, Constr. & Environ. Eng., Marquette Univ., Milwaukee, WI, USA
fYear :
2014
fDate :
2-5 Nov. 2014
Firstpage :
1648
Lastpage :
1651
Abstract :
Dynamic-mode cantilever-based structures supporting end masses are frequently used as MEMS/NEMS devices in application areas as diverse as chemical/biosensing, atomic force microscopy, and energy harvesting. This paper presents a new analytical solution for the free vibration of a cantilever with a rigid end mass of finite size. The effects of both translational and rotational inertia as well as horizontal eccentricity of the end mass are incorporated into the model. This model is general regarding the end-mass distribution/geometry and is validated here for the commonly encountered geometries of T- and U-shaped cantilevers. Comparisons with 3D FEA simulations and experiments on silicon and organic MEMS are quite encouraging. The new solution gives insight into device behavior, provides an efficient tool for preliminary design, and may be extended in a straightforward manner to account for inherent energy dissipation in the case of organic-based cantilevers.
Keywords :
cantilevers; energy harvesting; geometry; microsensors; vibration measurement; 3D FEA simulation; MEMS-NEMS device; T-shaped cantilever; U-shaped cantilever; atomic force microscopy; chemical-biosensing; dynamic-mode cantilever-based structure; end-mass distribution-geometry; energy dissipation; energy harvesting application; free vibration; horizontal eccentricity; organic MEMS device; organic-based cantilever; rotational inertia; sensing application; translational inertia; Analytical models; Frequency measurement; Geometry; Micromechanical devices; Silicon; Three-dimensional displays; T-shaped cantilever; U-shaped cantilever; analytical model; end mass; natural frequency; resonant frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
SENSORS, 2014 IEEE
Conference_Location :
Valencia
Type :
conf
DOI :
10.1109/ICSENS.2014.6985336
Filename :
6985336
Link To Document :
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