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On the Equivalence of Acoustic Impedance and Squeeze Film Impedance in Micromechanical Resonators

机译:微机械谐振器中的声阻抗和挤压膜阻抗等效

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摘要

In this work, we address the issue of modeling squeeze film damping in nontrivial geometries that are not amenable to analytical solutions. The design and analysis of microelectro-mechanical systems (MEMS) resonators, especially those that use platelike two-dimensional structures, require structural dynamic response over the entire range of frequencies of interest. This response calculation typically involves the analysis of squeeze film effects and acoustic radiation losses. The acoustic analysis of vibrating plates is a very well understood problem that is routinely carried out using the equivalent electrical circuits that employ lumped parameters (LP)for acoustic impedance. Here, we present a method to use the same circuit with the same elements to account for the squeeze film effects as well by establishing an equivalence between the parameters of the two domains through a rescaled equivalent relationship between the acoustic impedance and the squeeze film impedance. Our analysis is based on a simple observation that the squeeze film impedance rescaled by a factor of jω, where ω is the frequency of oscillation, qualitatively mimics the acoustic impedance over a large frequency range. We present a method to curvefit the numerically simulated stiffness and damping coefficients which are obtained using finite element analysis (FEA) analysis. A significant advantage of the proposed method is that it is applicable to any trivialontrivial geometry. It requires very limited finite element method (FEM) runs within the frequency range of interest, hence reducing the computational cost, yet modeling the behavior in the entire range accurately. We demonstrate the method using one trivial and one nontrivial geometry.
机译:在这项工作中,我们解决了不适合解析解决方案的非平凡几何形状的挤压膜阻尼建模问题。微机电系统(MEMS)谐振器的设计和分析,尤其是那些使用板状二维结构的谐振器,要求在整个感兴趣的频率范围内具有结构动态响应。该响应计算通常涉及挤压膜效应和声辐射损耗的分析。振动板的声学分析是一个非常容易理解的问题,通常使用等效电路对等效电路进行等效处理,该等效电路采用集总参数(LP)进行声阻抗。在这里,我们提出一种通过使用相同的电路和相同的元件来解决挤压膜效应的方法,该方法通过通过声阻抗和挤压膜阻抗之间的换算比例关系在两个域的参数之间建立等价关系。我们的分析基于一个简单的观察结果,即挤压膜的阻抗以jω的系数重新定标,其中ω是振荡频率,定性地模拟了大频率范围内的声阻抗。我们提出了一种曲线拟合使用有限元分析(FEA)分析获得的数值模拟刚度和阻尼系数的方法。所提出的方法的显着优点是它适用于任何平凡/非平凡的几何形状。它要求在感兴趣的频率范围内运行的有限元方法(FEM)非常有限,因此降低了计算成本,但仍可以在整个范围内准确地对行为建模。我们演示了使用一种平凡和一种非平凡的几何方法。

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  • 来源
    《Journal of Vibration and Acoustics》 |2016年第1期|011005.1-011005.10|共10页
  • 作者单位

    Centre for Ultrasonic Engineering, Department of Electronic and Electrical Engineering, University of Strathclyde, Glasgow G1 1XW, UK;

    Department of Mechanical Engineering and Centre for Nano Science and Engineering, Indian Institute of Science, Bangalore 560012, India;

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