Thickness-shear Vibration Frequencies of an Infinite Plate with a Generalized Material Property Grading along the Thickness
Ji Wang, Wenliang Zhang, Dejin Huang, Tingfeng Ma, Jianke Du, Lijun Yi

TL;DR
This paper investigates the thickness-shear vibration frequencies of an infinite quartz crystal plate with a generalized, trigonometric function-based material property gradient along its thickness, relevant for sensor reliability and design.
Contribution
It introduces a Fourier expansion method to analyze vibration modes in FGM quartz plates with complex property variations along the thickness.
Findings
Frequency changes of fundamental and overtone modes are characterized.
Mode coupling effects are identified for property-graded structures.
The approach enables evaluation of FGM effects on resonator performance.
Abstract
For quartz crystal resonators of thickness-shear type, the vibration frequency and mode shapes, which are key features of resonators in circuit applications, reflect the basic material and structural properties of the quartz plate and its variation with time under various factors such as erosive gases and liquids that can cause surface and internal damages and degradation of crystal blanks. The accumulated effects eventually will change the surface conditions in terms of elastic constants and stiffness and more importantly, the gradient of such properties along the thickness. This is a typical functionally graded materials (FGM) structure and has been studied extensively for structural applications under multiple loadings such as thermal and electromagnetic fields in recent years. For acoustic wave resonators, such studies are equally important and the wave propagation in FGM structures…
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