热声相控阵散热器。理论、特性和应用

Daniel Hufschläger, Dirk Gohlke, M. Weise, K. Bente, M. Gaal
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引用次数: 0

摘要

标准的非侵入性声学无损检测(NDT)方法,如接触式测试或使用浸入式水箱布置,由于探头需要与被测件直接接触或使用流体作为耦合介质,因此受到限制。空气耦合超声检测避免了这些限制,并实现了新的检测方法。两种新兴的换能器技术被认为是有前途的:使用铁驻极体的换能器和基于热声原理的发射器。基于薄膜技术的热声辐射器可以产生无共振的超声波。无谐振操作使宽带声波产生成为可能,并有望为现有无损检测方法带来优势。使用特殊形状的衬底和电极可以制造平面和聚焦热声散热器。这篇文章介绍了我们正在进行的关于热声散热器的最新研究成果,即热声相控阵。相控阵换能器无需移动或修改换能器本身,即可实时改变转向角度和焦点位置。结合这两种技术,热声发射器和相控阵原理拓宽了经典无损检测应用的范围和现代方法,如导波激励或结构健康监测。详细地,我们建立了一个自制造热声相控阵散热器的声场模型,对发射器进行了元件表征,并测试了几种应用场景(例如,传输,波束转向,聚焦和导波激励)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermoacoustic phased-array radiators – Theory, characteristics, and applications
Standard non-invasive acoustic non-destructive testing (NDT) methods like testing in contact or using immersion tank arrangements are limited since the probes need to be in direct contact with the test piece or using a fluid as coupling media. Air-coupled ultrasonic testing avoids these limitations and enables new testing methods. Two up-and-coming transducer technologies are recognized as promising: transducers using ferroelectrets and transmitters based on the thermoacoustic principle. Thermoacoustic radiators based on thin-film technology offer a resonant-free generation of ultrasound. The resonance-free operation enables the wideband generation of acoustics waves and promises advantages for existing NDT methods. Using specially shaped substrates and electrodes enables the fabrication of planar and focused thermoacoustic radiators. This contribution presents the latest results of our ongoing research regarding thermoacoustic radiators, which is the thermoacoustic phased-array. Phased-array transducers offer the on-the-fly change of the steering angle and the position of the focal point without moving or modifying the transducer itself. Combining both technologies, thermoacoustic emitter and the phasedarray principle broaden the spectrum of classical NDT applications and modern approaches like the excitation of guided waves or structural health monitoring. In detail, we modelled the sound field of a self-fabricated thermoacoustic phased-array radiator, characterised the emitter elementwise and tested several application scenarios (e.g., transmission, beam steering, focusing and the excitation of guided waves).
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