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A New Concept for a Laser-Based Ultrasonic Phased Array Receiver Using Photo-emf Detection

机译:基于光电动势检测的基于激光的超声相控阵接收器的新概念

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摘要

The virtues of laser-based ultrasound [1], LBU, in general, and phased-array generation and detection in particular, have been appreciated for many years. The ability to improve the spatial resolution of an imaging system, coupled with the potential reduction in local laser intensity at a given location on a component to avoid surface damage while still realizing enhanced performance, represent but two motivating factors that have driven the community to seek methods by which to realize phased-array processing. There has been much activity in demonstrating that phased-array generation of ultrasound can lead to an enhanced directivity of the ultrasound as well as to a decrease (or, increase) in the bandwidth of the generated ultrasound (if desired), be it in the bulk or along the surface of components. Examples of such phased-array generationtechniques (either in the thermoelastic or ablative regimes) include illumination of several discrete spots or locus of points with pulsed lasers [1] on the surface of a workpiece (simultaneously or sequentially), be it a line, an annular ring, or a plurality of spots — or illumination of a scanning pattern of lines along the surface of a sample, the so-called phase-velocity scanning technique [2]. By extension of the phased-array generation concept, one is led to consider the notion of laser-based, phased-array detectionof ultrasound [3]. By reciprocity, this can lead to a receiver of higher resolution relative to a single location for the optical sensing of the ultrasound, as well as to a reduction in the local laser fluence required to achieve a given spatial performance. Moreover, one can, in principle, combine the two modes of phased-array excitation and detection to realize even greater resolution capabilities, which one may refer to as “product processing.” In this case, one has, in essence, a focusing transmitter and an imaging detector, both functioning in concert.
机译:多年来,基于激光的超声[1],LBU(尤其是相控阵生成和检测)的优点已广为人知。改善成像系统的空间分辨率的能力,以及在组件的给定位置上潜在降低局部激光强度的可能性,以避免表面损坏,同时仍能实现增强的性能,这只是驱动社区寻求的两个激励因素。实现相控阵处理的方法。有很多活动表明超声相控阵的产生可以导致超声方向性的增强以及所产生的超声带宽的减少(或增加)(如果需要),无论是在超声中还是在超声中。散装或沿着组件表面。这种相控阵生成技术的示例(在热弹性或烧蚀状态下)包括在工件表面上(同时或依次)用脉冲激光[1]照射几个离散的点或点的轨迹,无论是一条线,一条或一条。环形环或多个斑点-或沿样品表面的线扫描图案的照亮,即所谓的相速度扫描技术[2]。通过扩展相控阵生成概念,人们开始考虑基于激光的超声相控阵检测[3]。通过互易,这可以导致相对于用于超声光学感测的单个位置具有更高分辨率的接收器,以及导致实现给定空间性能所需的局部激光通量的降低。而且,原则上可以将相控阵激发和检测的两种模式结合起来,以实现更高的分辨率,这种能力可以称为“产品处理”。在这种情况下,本质上具有聚焦发射器和成像检测器,两者均协同工作。

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