A digital closed-loop sense MEMS disk resonator gyroscope circuit design based on integrated analog front-end

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Abstract

A digital closed-loop system design of a microelectromechanical systems (MEMS) disk resonator gyroscope (DRG) is proposed in this paper. Vibration models with non-ideal factors are provided based on the structure characteristics and operation mode of the sensing element. The DRG operates in force balance mode with four control loops. A closed self-excited loop realizes stable vibration amplitude on the basis of peak detection technology and phase control loop. Force-to-rebalance technology is employed for the closed sense loop. A high-frequency carrier loaded on an anchor weakens the effect of parasitic capacitances coupling. The signal detected by the charge amplifier is demodulated and converted into a digital output for subsequent processing. Considering compatibility with digital circuits and output precision demands, a low passband sigma-delta (Σ∆) analog-to-digital converter (ADC) is implemented with a 111.8dB signal-to-noise ratio (SNR). The analog front-end and digital closed self-excited loop is manufactured with a standard 0.35 µm complementary metal-oxide-semiconductor (CMOS) technology. The experimental results show a bias instability of 2.1◦/h and a nonlinearity of 0.035% over the ± 400◦ full-scale range.

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Wang, Y., Fu, Q., Zhang, Y., Zhang, W., Chen, D., Yin, L., & Liu, X. (2020). A digital closed-loop sense MEMS disk resonator gyroscope circuit design based on integrated analog front-end. Sensors (Switzerland), 20(3). https://doi.org/10.3390/s20030687

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