A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation
The micro-electro-mechanical systems (MEMS)-based sensor technologies are considered to be the enabling factor for the future development of smart sensing applications, mainly due to their small size, low power consumption and relatively low cost. This paper presents a new structurally and thermally...
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doaj-20910e778c1b446793bd5a6c25acb5632021-01-27T00:04:42ZengMDPI AGApplied Sciences2076-34172021-01-01111129112910.3390/app11031129A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch CompensationFrancesca Pistorio0Muhammad Mubasher Saleem1Aurelio Somà2Department of Mechanical and Aerospace Engineering, Politecnico di Torino, Corso duca degli Abruzzi 24, 10129 Torino, ItalyDepartment of Mechatronics Engineering, National University of Sciences and Technology, Islamabad 44000, PakistanDepartment of Mechanical and Aerospace Engineering, Politecnico di Torino, Corso duca degli Abruzzi 24, 10129 Torino, ItalyThe micro-electro-mechanical systems (MEMS)-based sensor technologies are considered to be the enabling factor for the future development of smart sensing applications, mainly due to their small size, low power consumption and relatively low cost. This paper presents a new structurally and thermally stable design of a resonant mode-matched electrostatic <inline-formula><math display="inline"><semantics><mi>z</mi></semantics></math></inline-formula>-axis MEMS gyroscope considering the foundry constraints of relatively low cost and commercially available silicon-on-insulator multi-user MEMS processes (SOIMUMPs) microfabrication process. The novelty of the proposed MEMS gyroscope design lies in the implementation of two separate masses for the drive and sense axis using a unique mechanical spring configuration that allows minimizing the cross-axis coupling between the drive and sense modes. For frequency mismatch compensation between the drive and sense modes due to foundry process uncertainties and gyroscope operating temperature variations, a comb-drive-based electrostatic tuning is implemented in the proposed design. The performance of the MEMS gyroscope design is verified through a detailed coupled-field electric-structural-thermal finite element method (FEM)-based analysis.https://www.mdpi.com/2076-3417/11/3/1129MEMSmechanical designFEM analysisresonant gyroscopeelectrostatic tuningmicrofabrication |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Francesca Pistorio Muhammad Mubasher Saleem Aurelio Somà |
spellingShingle |
Francesca Pistorio Muhammad Mubasher Saleem Aurelio Somà A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation Applied Sciences MEMS mechanical design FEM analysis resonant gyroscope electrostatic tuning microfabrication |
author_facet |
Francesca Pistorio Muhammad Mubasher Saleem Aurelio Somà |
author_sort |
Francesca Pistorio |
title |
A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation |
title_short |
A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation |
title_full |
A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation |
title_fullStr |
A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation |
title_full_unstemmed |
A Dual-Mass Resonant MEMS Gyroscope Design with Electrostatic Tuning for Frequency Mismatch Compensation |
title_sort |
dual-mass resonant mems gyroscope design with electrostatic tuning for frequency mismatch compensation |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2021-01-01 |
description |
The micro-electro-mechanical systems (MEMS)-based sensor technologies are considered to be the enabling factor for the future development of smart sensing applications, mainly due to their small size, low power consumption and relatively low cost. This paper presents a new structurally and thermally stable design of a resonant mode-matched electrostatic <inline-formula><math display="inline"><semantics><mi>z</mi></semantics></math></inline-formula>-axis MEMS gyroscope considering the foundry constraints of relatively low cost and commercially available silicon-on-insulator multi-user MEMS processes (SOIMUMPs) microfabrication process. The novelty of the proposed MEMS gyroscope design lies in the implementation of two separate masses for the drive and sense axis using a unique mechanical spring configuration that allows minimizing the cross-axis coupling between the drive and sense modes. For frequency mismatch compensation between the drive and sense modes due to foundry process uncertainties and gyroscope operating temperature variations, a comb-drive-based electrostatic tuning is implemented in the proposed design. The performance of the MEMS gyroscope design is verified through a detailed coupled-field electric-structural-thermal finite element method (FEM)-based analysis. |
topic |
MEMS mechanical design FEM analysis resonant gyroscope electrostatic tuning microfabrication |
url |
https://www.mdpi.com/2076-3417/11/3/1129 |
work_keys_str_mv |
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