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Equivalent-Circuit Model for Quartz Resonators Effects of Finite Element Analysis, Acceleration, and Mass Loading

机译:石英谐振器的等效电路模型的有限元分析,加速度和质量载荷的影响

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摘要

In radar equipments and communication systems, quartz resonators are key components. So as to enhance the resonator performances, the development of accurate modelings taking into account the environment interaction (temperature, acceleration, magnetism…) is one of the major economic and strategic stakes. The main idea is to produce a realistic modeling. In literature, a lot of modelings are based on finite element analysis. But, for industrial applications, it is essential to link these accurate modelings to electric simulation softwares, such as Spice. Moreover, it is necessary to develop a simple computation method in order to answer the industrial time constraints. The idea is to use a Butterworth-Van Dyke (BVD) model based on an electrical equivalent circuit with, as input data, the studied natural frequency and the antiresonance frequency of an accurate finite element modeling. For the numerical example, a SC-cut (Stress-Compensated cut) quartz resonator is studied in this article for its fundamental thickness-shear resonance, the third and the fifth overtone. The influence of the model mesh quality, the electrode mass-loading, and the acceleration sensitivity on the motional parameters are analyzed. First, the choice of the finite element number along the thickness axis is crucial for the computation accuracy of the motional parameters. Then, the more the electrode material has a high density, the more the mass loading has a strong influence of the motional parameter values. Finally, the motional parameters are not really influenced by the acceleration field.
机译:在雷达设备和通信系统中,石英谐振器是关键组件。为了提高谐振器性能,考虑环境相互作用(温度,加速度,磁力等)的精确模型的开发是主要的经济和战略重点之一。主要思想是产生逼真的建模。在文献中,许多建模都是基于有限元分析的。但是,对于工业应用而言,将这些精确的建模与电气仿真软件(例如Spice)链接起来至关重要。此外,有必要开发一种简单的计算方法来解决工业时间上的限制。这个想法是使用一个基于等效电路的Butterworth-Van Dyke(BVD)模型,并以精确的有限元建模研究的固有频率和反共振频率作为输入数据。对于数值示例,本文研究了SC-cut(应力补偿切割)石英谐振器,它具有基本的厚度-剪切谐振,第三和第五泛音。分析了模型网格质量,电极质量负载和加速度灵敏度对运动参数的影响。首先,沿厚度轴选择有限元数对于运动参数的计算精度至关重要。然后,电极材料的密度越高,质量负载对运动参数值的影响越大。最后,运动参数实际上不受加速度场的影响。

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