Author:
Xiong Chuanguo,Zeng Pengjun,Lv Weishan,Lu Fengming,Zhang Ming,Huang Yuhua,Zhu Fulong
Abstract
This paper presents the design and optimization of a novel MEMS tuning fork gyroscope microstructure. In order to improve the mechanical sensitivity of the gyroscope, much research has been carried out in areas such as mode matching, improving the quality factor, etc. This paper focuses on the analysis of mode shape, and effectively optimizes the decoupling structure and size of the gyroscope. In terms of structural design, the vibration performance of the proposed structure was compared with other typical structures. It was found that slotting in the middle of the base improved the transmission efficiency of Coriolis vibration, and opening arc slots between the tines reduced the working modal order and frequency. In terms of size optimization, the Taguchi method was used to optimize the relevant feature sizes of the gyroscope. Compared with the initial structure, the transmission efficiency of Coriolis vibration of the optimized gyroscope was improved by about 18%, and the working modal frequency was reduced by about 2.7 kHz. Improvement of these two indicators will further improve the mechanical sensitivity of the gyroscope.
Funder
National Natural Science Foundation of China
the Aeronautical Science Foundation of China
Subject
Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering
Cited by
3 articles.
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1. A Mode Matched Tuning Fork Gyroscope Using ScAlN-Based Piezoelectric Driving And Sensing;2024 IEEE 19th International Conference on Nano/Micro Engineered and Molecular Systems (NEMS);2024-05-02
2. A tuning fork gyroscope with drive-sense orthogonal thin-walled holes for high sensitivity;Review of Scientific Instruments;2023-08-01
3. High-Precision Demodulation Method of MEMS Gyroscope Signal;2022 International Conference on Sensing, Measurement & Data Analytics in the era of Artificial Intelligence (ICSMD);2022-11-30