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Analytical model for viscous damping and the spring force for perforated planar microstructures acting at both audible and ultrasonic frequencies

机译:多孔板状微结构在听觉和超声频率下的粘滞阻尼和弹力分析模型

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摘要

The paper presents a model for the squeezed film damping, the resistance of the holes, and the corresponding spring forces for a periodic perforated microstructure including the effects of compressibility, inertia, and rarefied gas. The viscous damping and spring forces are obtained by using the continuity equation. The analytical formula for the squeezed film damping is applied to analyze the response of an ultrasonic transducer. The inclusion of these effects in a model significantly improves the agreement with measured results. Finally, it is shown that the frequency dependence of the total damping and total spring force for a cell are very similar to those corresponding to a rectangular open microstructure without holes. A separate analysis reveals the importance of each particular correction. The most important is the compressibility correction; the inertia has to be considered only for determining the spring force and the damping force for sufficiently high frequencies.
机译:本文提出了一个模型,用于膜的阻尼,孔的阻力以及相应的周期性穿孔微结构的弹簧力,其中包括可压缩性,惯性和稀薄气体的影响。粘性阻尼和弹簧力通过使用连续性方程获得。挤压膜阻尼的解析公式可用于分析超声换能器的响应。将这些效应包含在模型中可显着改善与测量结果的一致性。最后,显示出单元的总阻尼和总弹簧力的频率依赖性与对应于没有孔的矩形开放微结构的频率依赖性非常相似。单独的分析揭示了每个特定更正的重要性。最重要的是可压缩性校正。仅在确定足够高的频率的弹簧力和阻尼力时才需要考虑惯性。

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