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A Novel Wireless and Temperature-Compensated SAW Vibration Sensor

机译:新型的无线温度补偿式声表面波振动传感器

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摘要

A novel wireless and passive surface acoustic wave (SAW) based temperature-compensated vibration sensor utilizing a flexible Y-cut quartz cantilever beam with a relatively substantial proof mass and two one-port resonators is developed. One resonator acts as the sensing device adjacent to the clamped end for maximum strain sensitivity, and the other one is used as the reference located on clamped end for temperature compensation for vibration sensor through the differential approach. Vibration directed to the proof mass flex the cantilever, inducing relative changes in the acoustic propagation characteristics of the SAW travelling along the sensing device, and generated output signal varies in frequency as a function of vibration. A theoretical mode using the Rayleigh method was established to determine the optimal dimensions of the cantilever beam. Coupling of Modes (COM) model was used to extract the optimal design parameters of the SAW devices prior to fabrication. The performance of the developed SAW sensor attached to an antenna towards applied vibration was evaluated wirelessly by using the precise vibration table, programmable incubator chamber, and reader unit. High vibration sensitivity of ∼10.4 kHz/g, good temperature stability, and excellent linearity were observed in the wireless measurements.
机译:开发了一种新颖的基于无线和无源表面声波(SAW)的温度补偿振动传感器,该传感器利用了挠性Y形石英悬臂梁,具有相对可观的检测质量和两个单端口谐振器。一个谐振器充当与夹紧端相邻的传感设备,以实现最大的应变灵敏度,另一个谐振器用作位于夹紧端的参考,以通过差分方法对振动传感器进行温度补偿。指向检测质量的振动使悬臂弯曲,从而导致SAW沿传感设备传播的声传播特性发生相对变化,并且所产生的输出信号的频率随振动而变化。建立了使用瑞利方法的理论模式,以确定悬臂梁的最佳尺寸。模式耦合(COM)模型用于在制造之前提取SAW器件的最佳设计参数。通过使用精确的振动台,可编程的培养箱和读取器单元,无线评估了已安装在天线上的SAW传感器在施加振动时的性能。在无线测量中观察到约10.4 kHz / g的高振动灵敏度,良好的温度稳定性和出色的线性度。

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