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A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes

MEMS gyroscopes play an important role in inertial navigation measurements, which mainly works in n = 2 mode. However, mode matching is the basis for high-precision detection, which can improve the sensitivity, resolution, and signal-to-noise ratio of the gyroscopes. An initial frequency split is in...

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Autores principales: Chen, Chuanfu, Wu, Kai, Lu, Kuo, Li, Qingsong, Wang, Chengxiang, Wu, Xuezhong, Wang, Beizhen, Xiao, Dingbang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9319629/
https://www.ncbi.nlm.nih.gov/pubmed/35888867
http://dx.doi.org/10.3390/mi13071052
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author Chen, Chuanfu
Wu, Kai
Lu, Kuo
Li, Qingsong
Wang, Chengxiang
Wu, Xuezhong
Wang, Beizhen
Xiao, Dingbang
author_facet Chen, Chuanfu
Wu, Kai
Lu, Kuo
Li, Qingsong
Wang, Chengxiang
Wu, Xuezhong
Wang, Beizhen
Xiao, Dingbang
author_sort Chen, Chuanfu
collection PubMed
description MEMS gyroscopes play an important role in inertial navigation measurements, which mainly works in n = 2 mode. However, mode matching is the basis for high-precision detection, which can improve the sensitivity, resolution, and signal-to-noise ratio of the gyroscopes. An initial frequency split is inevitably generated during the manufacturing process. There are two methods to eliminate the frequency split and to achieve mode matching for the gyroscopes, which are electrostatic tuning and mechanical trimming, respectively. In this paper, we report a novel ring MEMS resonator and a novel method of mechanical frequency tuning. The most prominent characteristic of the resonator is that 16 raised mass blocks are increased in the circumferential positions of the ring uniformly. This structural design can achieve mass-stiffness decoupling, which means that punching holes on the mass blocks only affects the mass distribution but the stiffness is almost unchanged for the resonator. We verify the mass-stiffness decoupling by way of comparing the simulation with the conventional resonator. In addition, we put up an online tuning platform based on a femtosecond laser and reduce a resonator’s frequency split from 23.3 Hz to 0.4 Hz, which reveals that the frequency split is linearly related to the removed mass. These findings will have a referential significance for other transducers.
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spelling pubmed-93196292022-07-27 A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes Chen, Chuanfu Wu, Kai Lu, Kuo Li, Qingsong Wang, Chengxiang Wu, Xuezhong Wang, Beizhen Xiao, Dingbang Micromachines (Basel) Article MEMS gyroscopes play an important role in inertial navigation measurements, which mainly works in n = 2 mode. However, mode matching is the basis for high-precision detection, which can improve the sensitivity, resolution, and signal-to-noise ratio of the gyroscopes. An initial frequency split is inevitably generated during the manufacturing process. There are two methods to eliminate the frequency split and to achieve mode matching for the gyroscopes, which are electrostatic tuning and mechanical trimming, respectively. In this paper, we report a novel ring MEMS resonator and a novel method of mechanical frequency tuning. The most prominent characteristic of the resonator is that 16 raised mass blocks are increased in the circumferential positions of the ring uniformly. This structural design can achieve mass-stiffness decoupling, which means that punching holes on the mass blocks only affects the mass distribution but the stiffness is almost unchanged for the resonator. We verify the mass-stiffness decoupling by way of comparing the simulation with the conventional resonator. In addition, we put up an online tuning platform based on a femtosecond laser and reduce a resonator’s frequency split from 23.3 Hz to 0.4 Hz, which reveals that the frequency split is linearly related to the removed mass. These findings will have a referential significance for other transducers. MDPI 2022-06-30 /pmc/articles/PMC9319629/ /pubmed/35888867 http://dx.doi.org/10.3390/mi13071052 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Chuanfu
Wu, Kai
Lu, Kuo
Li, Qingsong
Wang, Chengxiang
Wu, Xuezhong
Wang, Beizhen
Xiao, Dingbang
A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes
title A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes
title_full A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes
title_fullStr A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes
title_full_unstemmed A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes
title_short A Novel Mechanical Frequency Tuning Method Based on Mass-Stiffness Decoupling for MEMS Gyroscopes
title_sort novel mechanical frequency tuning method based on mass-stiffness decoupling for mems gyroscopes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9319629/
https://www.ncbi.nlm.nih.gov/pubmed/35888867
http://dx.doi.org/10.3390/mi13071052
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