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具有鼓膜仿生结构的微谐振器的动态特性

Dynamic Properties of Microresonators with the Bionic Structure of Tympanic Membrane.

作者信息

Tai Yongpeng, Zhou Kai, Chen Ning

机构信息

College of Automobile and Traffic Engineering, Nanjing Forestry University, Nanjing 210037, China.

College of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Sensors (Basel). 2020 Dec 5;20(23):6958. doi: 10.3390/s20236958.

Abstract

The structure of a microresonator will affect the vibration characteristics and the performance of the system. Inspired by the structural characteristics of the human tympanic membrane, this paper proposed a microresonator with the bionic structure of a tympanic membrane. The structure of a tympanic membrane was simplified to a regular shape with three structural parameters: diameter, height, and thickness. To imitate the tympanic membrane, the contour surface of the bionic structure was modeled based on the formula of transverse vibration mode of a circular thin plate. The geometric model of the bionic structure was established by using the three structural parameters and the contour surface equation. The dynamic properties of the bionic model were studied by the finite element method (FEM). We discuss the modal characteristics of the bionic structure and study the effect of structural parameters and scale on the dynamic properties. The advantages of the bionic structure were investigated by a comparison with circular plate microresonators. The results illustrate that the bionic structure can significantly improve the resonant frequency and have a much larger effective area of vibration displacement.

摘要

微谐振器的结构会影响其振动特性以及系统性能。受人类鼓膜结构特征的启发,本文提出了一种具有鼓膜仿生结构的微谐振器。鼓膜的结构被简化为具有三个结构参数的规则形状:直径、高度和厚度。为了模仿鼓膜,基于圆形薄板横向振动模式的公式对仿生结构的轮廓表面进行建模。利用这三个结构参数和轮廓表面方程建立了仿生结构的几何模型。采用有限元方法(FEM)研究了仿生模型的动力学特性。我们讨论了仿生结构的模态特性,并研究了结构参数和尺寸对动力学特性的影响。通过与圆形板微谐振器进行比较,研究了仿生结构的优势。结果表明,仿生结构可以显著提高谐振频率,并且具有大得多的振动位移有效面积。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/21b9/7730341/37c26735803e/sensors-20-06958-g001.jpg

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