He Chunhua, Xu Yingyu, Wang Xiaoman, Wu Heng, Cheng Lianglun, Yan Guizhen, Huang Qinwen
School of Computer, Guangdong University of Technology, Guangzhou 510006, China.
Science and Technology on Reliability Physics and Application Technology of Electronic Component Laboratory, China Electronic Product Reliability and Environmental Testing Research Institute, Guangzhou 511370, China.
Sensors (Basel). 2024 Sep 28;24(19):6283. doi: 10.3390/s24196283.
Circuit noise is a critical factor that affects the performances of an MEMS gyroscope. Therefore, it is essential to analyze and suppress the noises in the key analog circuits, which are the main noise sources. This study presents an optimized front-end readout circuit and noise suppression methods. First, the noise analysis of the front-end readout circuit is carried out with theoretical derivation to clarify the main noise contributors. To suppress the output noise, an improved readout circuit based on the T-resistor networks is proposed, and the corresponding noise equation is derived in detail. In addition, the noise analysis of the critical circuits of the detection and control system, such as the inverting amplifiers, the first-order low-pass filters, and the first-order high-pass filters, is carried out, and the noise suppression strategy with the optimization of the resistances and is proposed. Taking the inverting amplifier as an example, the theoretical derivation is verified by measuring and comparing the output noises of different resistance schemes. In addition, the output noises of the gyroscope before and after circuit optimization are measured. Experimental results demonstrate that the output noise with the circuit optimization is reduced from 60 μV/Hz to 30 μV/Hz and the bias instability is reduced from 3.8 deg/h to 1.38 deg/h. In addition, the ARW is significantly improved from 0.035 deg/h to 0.018 deg/h, which indicates that the proposed noise analysis and suppression methods are effective and feasible.
电路噪声是影响MEMS陀螺仪性能的关键因素。因此,分析和抑制作为主要噪声源的关键模拟电路中的噪声至关重要。本研究提出了一种优化的前端读出电路和噪声抑制方法。首先,通过理论推导对前端读出电路进行噪声分析,以明确主要噪声贡献源。为抑制输出噪声,提出了一种基于T型电阻网络的改进读出电路,并详细推导了相应的噪声方程。此外,对检测与控制系统的关键电路,如反相放大器、一阶低通滤波器和一阶高通滤波器进行了噪声分析,并提出了通过优化电阻的噪声抑制策略。以反相放大器为例,通过测量和比较不同电阻方案的输出噪声对理论推导进行了验证。此外,还测量了电路优化前后陀螺仪的输出噪声。实验结果表明,电路优化后的输出噪声从60 μV/Hz降至30 μV/Hz,偏置不稳定性从3.8 deg/h降至1.38 deg/h。此外,角随机游走从0.035 deg/h显著提高到0.018 deg/h,这表明所提出的噪声分析和抑制方法是有效且可行的。