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基于 X-112°Y 钽酸锂(LiTaO3)衬底的新型声表面波陀螺仪的研制。

Development of a new surface acoustic wave based gyroscope on a X-112°Y LiTaO3 substrate.

机构信息

State Key Laboratory of Acoustics, Institute of Acoustics, Chinese Academy of Sciences, Beijing 100190, China.

出版信息

Sensors (Basel). 2011;11(11):10894-906. doi: 10.3390/s111110894. Epub 2011 Nov 21.

Abstract

A new micro gyroscope based on the surface acoustic wave (SAW) gyroscopic effect was developed. The SAW gyroscopic effect is investigated by applying the surface effective permittivity method in the regime of small ratios of the rotation velocity and the frequency of the SAW. The theoretical analysis indicates that the larger velocity shift was observed from the rotated X-112°Y LiTaO3 substrate. Then, two SAW delay lines with reverse direction and an operation frequency of 160 MHz are fabricated on a same X-112°Y LiTaO3 chip as the feedback of two SAW oscillators, which act as the sensor element. The single-phase unidirectional transducer (SPUDT) and combed transducers were used to structure the delay lines to improve the frequency stability of the oscillator. The rotation of a piezoelectric medium gives rise to a shift of the propagation velocity of SAW due to the Coriolis force, resulting in the frequency shift of the SAW device, and hence, the evaluation of the sensor performance. Meanwhile, the differential structure was performed to double the sensitivity and compensate for the temperature effects. Using a precise rate table, the performance of the fabricated SAW gyroscope was evaluated experimentally. A sensitivity of 1.332 Hz deg(-1) s at angular rates of up to 1,000 deg s(-1) and good linearity are observed.

摘要

一种基于声表面波(SAW)陀螺效应的新型微陀螺仪已经开发出来。通过在小旋转速度与 SAW 频率比的条件下应用表面有效介电常数方法来研究 SAW 陀螺效应。理论分析表明,从旋转的 X-112°Y LiTaO3 基板上观察到了更大的速度偏移。然后,在相同的 X-112°Y LiTaO3 芯片上制造了两个具有相反方向和 160 MHz 工作频率的 SAW 延迟线,作为两个 SAW 振荡器的反馈,它们充当传感器元件。单相位单向换能器(SPUDT)和梳状换能器用于构建延迟线,以提高振荡器的频率稳定性。由于科里奥利力,压电介质的旋转导致 SAW 的传播速度发生偏移,从而导致 SAW 器件的频率偏移,从而评估传感器性能。同时,采用差分结构来提高灵敏度并补偿温度效应。使用精密速率表对所制造的 SAW 陀螺仪的性能进行了实验评估。在高达 1000 deg s(-1)的角速率下,观察到 1.332 Hz deg(-1) s 的灵敏度和良好的线性度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0626/3274320/0f4f79efcd3c/sensors-11-10894f1.jpg

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