Interface dissipation in piezoelectric MEMS resonators: An experimental and numerical investigation

A. Frangi, M. Cremonesi, A. Jaakkola, T. Pensala
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引用次数: 1

Abstract

Piezoelectrically actuated MEMS resonators can be very effective for timing applications even though experiments show that mode coupling and dissipative phenomena can affect their performance. Experiments demonstrate the occurrence of a much larger mechanical dissipation with respect to similar devices actuated capacitively. This contribution addresses the analysis of different dissipation phenomena. Refined numerical tools have shown that anchor and thermoelastic losses alone cannot reproduce experimental data. Hence a model to account for surface dissipation has been considered introducing a viscous term at the interfaces. A set of specific length extensional devices with different dimensions, vibrating modes and piezo-patterns have been produced and tested to validate the model. The numerical predictions show a good agreement with the experimental tests for different device lengths and actuation frequencies, confirming the initial assumption.
压电式MEMS谐振器的界面耗散:实验与数值研究
压电驱动的MEMS谐振器可以非常有效地用于定时应用,尽管实验表明模式耦合和耗散现象会影响其性能。实验表明,相对于电容驱动的类似装置,发生了更大的机械耗散。这篇文章分析了不同的耗散现象。精确的数值工具表明,锚和热弹性损失本身不能再现实验数据。因此,考虑在界面处引入粘性项来解释表面耗散的模型。制作了一组具有不同尺寸、不同振型和不同压电型的比长伸缩装置,并进行了试验验证。在不同装置长度和驱动频率下,数值预测结果与实验结果吻合较好,证实了初始假设。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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