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Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope

This paper presents the design and analysis of a multi degree of freedom (DOF) electro-thermally actuated non-resonant MEMS gyroscope with a 3-DOF drive mode and 1-DOF sense mode system. The 3-DOF drive mode system consists of three masses coupled together using suspension beams. The 1-DOF system co...

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Autores principales: Saqib, Muhammad, Mubasher Saleem, Muhammad, Mazhar, Naveed, Awan, Saif Ullah, Shahbaz Khan, Umar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6266985/
https://www.ncbi.nlm.nih.gov/pubmed/30400677
http://dx.doi.org/10.3390/mi9110577
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author Saqib, Muhammad
Mubasher Saleem, Muhammad
Mazhar, Naveed
Awan, Saif Ullah
Shahbaz Khan, Umar
author_facet Saqib, Muhammad
Mubasher Saleem, Muhammad
Mazhar, Naveed
Awan, Saif Ullah
Shahbaz Khan, Umar
author_sort Saqib, Muhammad
collection PubMed
description This paper presents the design and analysis of a multi degree of freedom (DOF) electro-thermally actuated non-resonant MEMS gyroscope with a 3-DOF drive mode and 1-DOF sense mode system. The 3-DOF drive mode system consists of three masses coupled together using suspension beams. The 1-DOF system consists of a single mass whose motion is decoupled from the drive mode using a decoupling frame. The gyroscope is designed to be operated in the flat region between the first two resonant peaks in drive mode, thus minimizing the effect of environmental and fabrication process variations on device performance. The high gain in the flat operational region is achieved by tuning the suspension beams stiffness. A detailed analytical model, considering the dynamics of both the electro-thermal actuator and multi-mass system, is developed. A parametric optimization is carried out, considering the microfabrication process constraints of the Metal Multi-User MEMS Processes (MetalMUMPs), to achieve high gain. The stiffness of suspension beams is optimized such that the sense mode resonant frequency lies in the flat region between the first two resonant peaks in the drive mode. The results acquired through the developed analytical model are verified with the help of 3D finite element method (FEM)-based simulations. The first three resonant frequencies in the drive mode are designed to be 2.51 kHz, 3.68 kHz, and 5.77 kHz, respectively. The sense mode resonant frequency is designed to be 3.13 kHz. At an actuation voltage of 0.2 V, the dynamically amplified drive mode gain in the sense mass is obtained to be 18.6 µm. With this gain, a capacitive change of [Formula: see text] and [Formula: see text] is achieved corresponding to the sense mode amplitude of [Formula: see text] and [Formula: see text] at atmospheric air pressure and in a vacuum, respectively.
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spelling pubmed-62669852018-12-06 Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope Saqib, Muhammad Mubasher Saleem, Muhammad Mazhar, Naveed Awan, Saif Ullah Shahbaz Khan, Umar Micromachines (Basel) Article This paper presents the design and analysis of a multi degree of freedom (DOF) electro-thermally actuated non-resonant MEMS gyroscope with a 3-DOF drive mode and 1-DOF sense mode system. The 3-DOF drive mode system consists of three masses coupled together using suspension beams. The 1-DOF system consists of a single mass whose motion is decoupled from the drive mode using a decoupling frame. The gyroscope is designed to be operated in the flat region between the first two resonant peaks in drive mode, thus minimizing the effect of environmental and fabrication process variations on device performance. The high gain in the flat operational region is achieved by tuning the suspension beams stiffness. A detailed analytical model, considering the dynamics of both the electro-thermal actuator and multi-mass system, is developed. A parametric optimization is carried out, considering the microfabrication process constraints of the Metal Multi-User MEMS Processes (MetalMUMPs), to achieve high gain. The stiffness of suspension beams is optimized such that the sense mode resonant frequency lies in the flat region between the first two resonant peaks in the drive mode. The results acquired through the developed analytical model are verified with the help of 3D finite element method (FEM)-based simulations. The first three resonant frequencies in the drive mode are designed to be 2.51 kHz, 3.68 kHz, and 5.77 kHz, respectively. The sense mode resonant frequency is designed to be 3.13 kHz. At an actuation voltage of 0.2 V, the dynamically amplified drive mode gain in the sense mass is obtained to be 18.6 µm. With this gain, a capacitive change of [Formula: see text] and [Formula: see text] is achieved corresponding to the sense mode amplitude of [Formula: see text] and [Formula: see text] at atmospheric air pressure and in a vacuum, respectively. MDPI 2018-11-05 /pmc/articles/PMC6266985/ /pubmed/30400677 http://dx.doi.org/10.3390/mi9110577 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Saqib, Muhammad
Mubasher Saleem, Muhammad
Mazhar, Naveed
Awan, Saif Ullah
Shahbaz Khan, Umar
Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope
title Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope
title_full Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope
title_fullStr Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope
title_full_unstemmed Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope
title_short Design and Analysis of a High-Gain and Robust Multi-DOF Electro-thermally Actuated MEMS Gyroscope
title_sort design and analysis of a high-gain and robust multi-dof electro-thermally actuated mems gyroscope
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6266985/
https://www.ncbi.nlm.nih.gov/pubmed/30400677
http://dx.doi.org/10.3390/mi9110577
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