Department of Electrical and Computer Engineering, Michigan State University, East Lansing, MI 48824, USA.
Sensors (Basel). 2020 Jul 21;20(14):4051. doi: 10.3390/s20144051.
The coupling of waves between the piezoelectric generators, detectors, and propagating media is challenging due to mismatch in the acoustic properties. The mismatch leads to the reverberation of waves within the transducer, heating, low signal-to-noise ratio, and signal distortion. Acoustic impedance matching increases the coupling largely. This article presents standard methods to match the acoustic impedance of the piezoelectric sensors, actuators, and transducers with the surrounding wave propagation media. Acoustic matching methods utilizing active and passive materials have been discussed. Special materials such as nanocomposites, metamaterials, and metasurfaces as emerging materials have been presented. Emphasis is placed throughout the article to differentiate the difference between electric and acoustic impedance matching and the relation between the two. Comparison of various techniques is made with the discussion on capabilities, advantages, and disadvantages. Acoustic impedance matching for specific and uncommon applications has also been covered.
由于压电换能器、探测器和传播介质之间的声学性质不匹配,波的耦合具有挑战性。这种不匹配会导致换能器内的波产生混响、发热、信噪比低和信号失真。声阻抗匹配会大大增加耦合。本文介绍了将压电传感器、换能器和换能器的声阻抗与周围波传播介质相匹配的标准方法。讨论了利用有源和无源材料的声匹配方法。还介绍了一些特殊材料,如纳米复合材料、超材料和超表面等新兴材料。本文始终强调要区分电和声学阻抗匹配之间的区别,以及它们之间的关系。对各种技术进行了比较,并讨论了它们的功能、优点和缺点。还介绍了特定和不常见应用的声阻抗匹配。