A MEMS triple sensing scheme based on nonlinear coupled micromachined resonators [Abstract]
In the past few decades, advances in micro-electromechanical systems (MEMS) have produced robust, accurate, and high-performance devices. Extensive research has been conducted to improve the selectivity and sensitivity of MEMS sensors by adjusting the device dimensions and adopting nonlinear features. However, the sensing for multiple parameters typically relies on combining several separate MEMS devices. In this work, a new triple sensing scheme via nonlinear weakly coupled resonators is introduced, which could simultaneously detect three different physical stimuli (including vertical acceleration) by monitoring the dynamic response around the first three lowest modes. The Euler-Bernoulli beam model with three-modes Galerkin discretization is used to derive a reduced-order model considering the geometric and electrostatic nonlinearities to characterize the resonator's nonlinear dynamics under the influence of differentstimuli. The simulation results show the potential of the nonlinear coupled resonator to perform triple detection.
History
School
- Mechanical, Electrical and Manufacturing Engineering
Published in
Book of Abstracts of the Third International Nonlinear Dynamics Conference Rome, June 18-22, 2023Source
Third International Nonlinear Dynamics Conference (NODYCON 2023)Version
- AM (Accepted Manuscript)
Publisher statement
This paper was published in the Book of Abstracts of the Third International Nonlinear Dynamics Conference Rome, June 18-22, 2023. A full length version of this paper was published by Springer and is available at https://doi.org/10.1007/s11071-023-08674-6 and in the repository at https://hdl.handle.net/2134/25226732Acceptance date
2022-10-20Copyright date
2022Publisher version
Language
- en