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Analysis of temperature adaptability for frequency control loop for silicon micromechanical gyroscope

机译:硅微机械陀螺频率控制环的温度适应性分析

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It''s generally agreed that using a PLL-based frequency control loop for a silicon micromechanical gyroscope the drive frequency can track the natural frequency precisely in any condition. To verify it, an analysis of its frequency tracking ability in varying temperature condition is presented. Firstly the dynamical analysis of the drive mode is presented and its phase-frequency relation is obtained. By analyzing the PLL-based frequency control loop the phase condition for frequency tracking is established. Then the simulation for the relation between the phase drift with temperature of the displacement readout circuit and the drive frequency of the gyroscope is carried out under the fixed phase condition. It shows that the frequency error will increase when the phase drift of the displacement readout circuit is increasing. Finally an experiment is carried out with a digital-analog mixed PCB based on FPGA, which is designed to simultaneously measure the drive frequency, natural frequency and phase drift of displacement readout circuit in temperature ranging from 5°C to 50°C. The results show that the phase of the displacement readout circuit drifts with temperature, and the error between natural frequency and drive frequency is proportional with the phase drift. Thus in order to keep the frequency tracking accuracy in different temperature the compensation for the phase condition must be employed.
机译:人们普遍同意,对于硅微机械陀螺仪使用基于PLL的频率控制环路,驱动频率可以在任何条件下精确地跟踪固有频率。为了验证这一点,提出了在温度变化条件下其频率跟踪能力的分析。首先给出了驱动模式的动力学分析,并获得了其相位-频率关系。通过分析基于PLL的频率控制环路,可以建立用于频率跟踪的相位条件。然后,在固定相位条件下,对位移读出电路的温度随相位漂移与陀螺仪的驱动频率之间的关系进行了仿真。它表明,当位移读出电路的相位漂移增加时,频率误差将增加。最后,利用基于FPGA的数模混合PCB进行了实验,该电路旨在在5°C至50°C的温度范围内同时测量位移读出电路的驱动频率,固有频率和相位漂移。结果表明,位移读出电路的相位随温度而漂移,固有频率和驱动频率之间的误差与相位漂移成正比。因此,为了在不同温度下保持频率跟踪精度,必须采用相位条件补偿。

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