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带谐振腔的空气耦合 MUMPs 电容式微机械超声换能器。

Air-coupled MUMPs capacitive micromachined ultrasonic transducers with resonant cavities.

机构信息

CAEND, UPM-CSIC, C/Serrano, 144, 28006 Madrid, Spain.

出版信息

Ultrasonics. 2012 Apr;52(4):482-9. doi: 10.1016/j.ultras.2011.10.011. Epub 2011 Nov 4.

Abstract

This work reports performance improvements of air-coupled capacitive micromachined ultrasonic transducers (CMUTs) using resonant cavities. In order to perform this work, we have designed and manufactured a CMUT employing multi-user microelectromechanical systems (MEMS) processes (MUMPs). The transducer was designed using Helmholtz resonator principles. This was characterised by the dimensions of the cavity and several acoustic ports, which had the form of holes in the CMUT plate. The MUMPs process has the advantage of being low cost which allows the manufacture of economic prototypes. In this paper we show the effects of the resonant cavities and acoustic ports in CMUTs using laser Doppler vibrometry and acoustical measurements. We also use Finite Element (FE) simulations in order to support experimental measurements. The results show that it is possible to enhance the output pressure and bandwidth in air by tuning the resonance frequency of the plate (f(p)) with that of the Helmholtz resonator (f(H)). The experimental measurements show the plate resonance along with an additional resonance in the output pressure spectrum. This appears due to the effect of the new resonant cavities in the transducer. FE simulations show an increase of 11 dB in the output pressure with respect to that of a theoretical vacuum-sealed cavity MUMPs CMUT by properly tuning the transducer. The bandwidth has been also analyzed by calculating the mechanical Q factor of the tuned CMUT. This has been estimated as 4.5 compared with 7.75 for the vacuum-sealed cavity MUMPs CMUT.

摘要

本工作报道了使用共振腔提高空气耦合电容式微机械超声换能器(CMUT)性能的方法。为了进行这项工作,我们设计并制造了一种采用多用户微机电系统(MEMS)工艺(MUMPs)的 CMUT。该换能器采用亥姆霍兹共振器原理设计。这是通过腔的尺寸和几个声学端口来表征的,这些声学端口采用 CMUT 板上的孔的形式。MUMPs 工艺的优点是成本低,可以制造经济的原型。在本文中,我们使用激光多普勒测振仪和声学测量来展示 CMUT 中共振腔和声学端口的影响。我们还使用有限元(FE)模拟来支持实验测量。结果表明,通过调整板的共振频率(f(p))与亥姆霍兹共振器的共振频率(f(H)),可以在空气中提高输出压力和带宽。实验测量显示,在输出压力谱中出现了板的共振以及附加的共振。这是由于换能器中新的共振腔的影响。FE 模拟显示,通过适当调整换能器,输出压力比理论上的真空密封腔 MUMPs CMUT 增加了 11dB。通过计算调谐 CMUT 的机械 Q 因子来分析带宽。这一数值估计为 4.5,而真空密封腔 MUMPs CMUT 的数值为 7.75。

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