Title :
Design and implementation of a fully-decoupled tuning fork (FDTF) MEMS vibratory gyroscope for robustness improvement
Author :
Feng-Yu Lee ; Kai-Chih Liang ; Cheng, Emerson ; Weileun Fang
Author_Institution :
Power Mech. Eng. Dept., Nat. Tsing-Hua Univ., Hsinchu, Taiwan
Abstract :
This study demonstrates the structural design and implementation of a single-axis MEMS vibratory rate gyroscope for the robustness improvement. As in Fig.1, features of this study are: (1) the employment of the fully-decoupled mechanism minimizes the mechanical cross-coupling between the drive-mode and the sense-mode; (2) the tuning fork structure combined with differential sensing architecture increases the resistance against external vibrations; (3) a compact structural design consists of the structurally forced (by rigid lever mechanism) anti-phase sense-mode and the linear-coupled anti-phase drive-mode. Preliminary results show a reduced coupling signal of near 500°/s, and the vibration resistances along different directions are also investigated. Moreover, the angular rate sensitivity is 17.7μV/°/s, which can be further improved using a mode-matched operation.
Keywords :
gyroscopes; microsensors; vibrations; differential sensing architecture; drive mode; fully decoupled mechanism; fully decoupled tuning fork vibratory gyroscope; mechanical cross coupling effect; robustness improvement; sense mode; single-axis MEMS vibratory rate gyroscope; structural design; tuning fork structure; Acceleration; Couplers; Couplings; Gyroscopes; Micromechanical devices; Sensors; Vibrations; Decoupled; Gyroscope; Micro Electromechanical System (MEMS); Quadrature; Robustness; Tuning Fork;
Conference_Titel :
Solid-State Sensors, Actuators and Microsystems (TRANSDUCERS), 2015 Transducers - 2015 18th International Conference on
Conference_Location :
Anchorage, AK
DOI :
10.1109/TRANSDUCERS.2015.7181134