Wang Ji, Zhao Wenhua
Mechanics and Materials Science Research Center, School of Engineering, Ningbo University, Ningbo, Zhejiang 315211, China.
IEEE Trans Ultrason Ferroelectr Freq Control. 2005 Nov;52(11):2023-30. doi: 10.1109/tuffc.2005.1561671.
It is well understood that the strong coupling of thickness-shear and flexural vibrations in piezoelectric crystal plates only occurs at specific length at which the vibration mode conversion, like the flexural mode gradually converting to thickness-shear mode while the thickness-shear mode converting to higher-order flexural mode, happens. It is important to avoid the strong coupling of modes in a crystal resonator that uses thickness-shear vibrations to enhance the energy trapping. To achieve such a design goal, the length of a crystal blank should be carefully chosen such that the coupling is at its weakest, which usually is in the middle of two strong coupling points. Through a closer examination of the frequency spectra, or the frequency-length relationship in this study, we can see that the strong coupling points appear periodically. This implies that we can find exact locations with the plate theory that predicts the resonance frequency. Based on this observation, we first use the first-order Mindlin plate theory with the precise thickness-shear frequency, which is normalized to one, to find corresponding wavenumbers. Then the length as a variable is solved from the coupled frequency equation for exact coupling points in a crystal plate of AT-cut quartz. The optimal length of a crystal blank in the simplest resonator model is calculated for the coupled thickness-shear, flexural, and extensional vibrations. The solutions and the method will be important in the determination of optimal length of a crystal blank in the resonator design process.
众所周知,压电晶体板中厚度剪切振动和弯曲振动的强耦合仅在特定长度处发生,在该长度处会发生振动模式转换,例如弯曲模式逐渐转换为厚度剪切模式,而厚度剪切模式转换为高阶弯曲模式。对于使用厚度剪切振动来增强能量俘获的晶体谐振器,避免模式的强耦合非常重要。为了实现这样的设计目标,应仔细选择晶体坯料的长度,以使耦合处于最弱状态,这通常位于两个强耦合点的中间。通过更仔细地检查频谱,或本研究中的频率-长度关系,我们可以看到强耦合点周期性出现。这意味着我们可以利用预测共振频率的板理论找到精确位置。基于这一观察结果,我们首先使用一阶明德林板理论和精确的厚度剪切频率(归一化为1)来找到相应的波数。然后从耦合频率方程中求解长度变量,以确定AT切石英晶体板中精确的耦合点。针对耦合的厚度剪切、弯曲和伸展振动,计算了最简单谐振器模型中晶体坯料的最佳长度。这些解决方案和方法在谐振器设计过程中确定晶体坯料的最佳长度时将非常重要。