The purpose of this paper is to investigate the nonlinear dynamics governing the behavior of electrostatically actuated micro electro mechanical systems (MEMS) cantilever undergoing parametric resonance. The MEMS consists of a cantilever parallel to a ground plate. The beam is actuated via an A/C voltage with excitation frequency near first natural frequency of the cantilever. The model includes damping, electrostatic, and Casimir (or van der Waals) forces. The electrostatic force is modeled to include the fringe effect. The amplitude-voltage response of the parametric resonance and the effects of varying the magnitudes of the fringe, Casimir (or Van der Waals), and damping forces along with varying the detuning parameter are reported. The response is obtained using two different methods, namely the method of multiple scales (MMS), and the homotopy analysis method (HAM). In this study approximations up to a 2nd order HAM are used. HAM is a deformation technique that begins with an initial guess and continuously deforms it to the exact answer. For the 1st Order HAM, a softening effect is reported. The 1st Order HAM matches the MMS results in low amplitude and begins to soften and deviate away from the MMS solution in higher amplitudes. For the 2nd Order HAM deformation the softening effect is slightly more pronounced with a slightly lower prediction of the maximum deflection of the cantilever tip. For the 2nd order deformation solution the stable branch of the amplitude-voltage response obtained by the HAM shifts leftward from the MMS solution with the unstable branches between the two methods continue to agree in low amplitudes and deviate in high amplitudes. As a remark, the higher order HAM solutions are obtained symbolically with the software Mathematica and numerically ran with the software Matlab.
Skip Nav Destination
ASME 2018 Dynamic Systems and Control Conference
September 30–October 3, 2018
Atlanta, Georgia, USA
Conference Sponsors:
- Dynamic Systems and Control Division
ISBN:
978-0-7918-5191-3
PROCEEDINGS PAPER
Voltage Response for Parametrically Actuated MEMS Cantilever Beam Using Homotopy Analysis Method and Method of Multiple Scales
Christopher Reyes,
Christopher Reyes
University of Texas Rio Grande Valley, Edinburg, TX
Search for other works by this author on:
Dumitru I. Caruntu
Dumitru I. Caruntu
University of Texas Rio Grande Valley, Edinburg, TX
Search for other works by this author on:
Christopher Reyes
University of Texas Rio Grande Valley, Edinburg, TX
Dumitru I. Caruntu
University of Texas Rio Grande Valley, Edinburg, TX
Paper No:
DSCC2018-9012, V003T42A002; 9 pages
Published Online:
November 12, 2018
Citation
Reyes, C, & Caruntu, DI. "Voltage Response for Parametrically Actuated MEMS Cantilever Beam Using Homotopy Analysis Method and Method of Multiple Scales." Proceedings of the ASME 2018 Dynamic Systems and Control Conference. Volume 3: Modeling and Validation; Multi-Agent and Networked Systems; Path Planning and Motion Control; Tracking Control Systems; Unmanned Aerial Vehicles (UAVs) and Application; Unmanned Ground and Aerial Vehicles; Vibration in Mechanical Systems; Vibrations and Control of Systems; Vibrations: Modeling, Analysis, and Control. Atlanta, Georgia, USA. September 30–October 3, 2018. V003T42A002. ASME. https://doi.org/10.1115/DSCC2018-9012
Download citation file:
23
Views
Related Proceedings Papers
Related Articles
The Nonlinear Response of a Simply Supported Rectangular Metallic Plate to Transverse Harmonic Excitation
J. Appl. Mech (September,2000)
Anomalous Nonlinear Dynamics Behavior of Fractional Viscoelastic Beams
J. Comput. Nonlinear Dynam (November,2021)
An Efficient Reduced-Order Model to Investigate the Behavior of an Imperfect Microbeam Under Axial Load and Electric Excitation
J. Comput. Nonlinear Dynam (January,2013)
Related Chapters
Determination of Optimal Indexes of Coal Preparation by Using the Software of MATLAB and LINGO
Proceedings of the International Conference on Technology Management and Innovation
Simulation Analysis and Research on the Vibration Velocity for the Electromagnetic Vibration Feeding System Based on MATLAB Software
Proceedings of the International Conference on Technology Management and Innovation
Image Processing Tool to Identify Plants from Leaf Images
International Conference on Computer Research and Development, 5th (ICCRD 2013)