利用微机械超声换能器进行空气耦合无损评价

S. Hansen, B. Mossawir, A. Sanli Ergun, F. Levent Degertekin, B. Khuri-Yakub
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引用次数: 41

摘要

使用传统压电换能器的无损评估技术通常需要液体耦合流体来改善压电材料与空气之间的阻抗失配。空气耦合超声系统可以消除这一要求,如果系统的动态范围足够大,在气固界面的损失是可以容忍的。电容式微机械超声换能器(cMUTs)在双基地传输模式下具有超过100 dB的动态范围。这种动态范围,以及将超声波有效地传输到空气中的能力,使cMUTs非常适合空气耦合无损评估应用。这些换能器既可以用于正入射到样品的透透射实验,也可以用于激发和检测铝和复合材料板中的导波。在本文中,我们介绍了一个使用cmut实现超过100 dB动态范围的pitch-catch传输系统的结果。用等效电路对传感器进行了建模,预测了传输系统的插入损耗和动态范围。我们还证明了兰姆波缺陷检测在单面无损评价中的可行性。一对cMUTs在1.2 mm厚的铝板上激发和检测so模式,接收信噪比为28 dB,不进行信号平均。
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Air-coupled nondestructive evaluation using micromachined ultrasonic transducers
Nondestructive evaluation techniques which use conventional piezoelectric transducers typically require liquid coupling fluids to improve the impedance mismatch between piezoelectric materials and air. Air-coupled ultrasonic systems can eliminate this requirement if the dynamic range of the system is large enough such that the losses at the air-solid interfaces are tolerable. Capacitive micromachined ultrasonic transducers (cMUTs) have been shown to have more than 100 dB dynamic range when used in bistatic transmission mode. This dynamic range, along with the ability to transmit ultrasound efficiently into air, makes cMUTs ideally suited for air-coupled nondestructive evaluation applications. These transducers can be used either in through transmission experiments at normal incidence to the sample or to excite and detect guided waves in aluminum and composite plates. In this paper, we present results of a pitch-catch transmission system using cMUTs that achieves a dynamic range in excess of 100 dB. The pair of transducers is modeled with an equivalent electrical circuit which predicts the transmission system's insertion loss and dynamic range. We also demonstrate the feasibility of Lamb wave defect detection for one-sided nondestructive evaluation applications. A pair of cMUTs excites and detects the so mode in a 1.2 mm-thick aluminum plate with a received signal-to-noise ratio of 28 dB without signal averaging.
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