Monitoring defects in plates using topological acoustic sensing and sideband peak counting.

IF 3.8 2区 物理与天体物理 Q1 ACOUSTICS Ultrasonics Pub Date : 2025-01-11 DOI:10.1016/j.ultras.2025.107568
I-Ting Ho, Krishna Muralidharan, Keith Runge, Araceli Hernandez Granados, Tribikram Kundu, Pierre A Deymier
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Abstract

We demonstrate an integrated non-destructive inspection methodology that employs the nonlinear ultrasonics-based sideband peak counting (SPC) technique in conjunction with topological acoustics (TA) sensing to comprehensively characterize the acoustic response of steel plates that contain differing levels of damage. By combining the SPC technique and TA, increased sensitivity to defect/damage detection as well as the ability to spatially resolve the presence of defects was successfully established. Towards this end, using a Rockwell hardness indenter, steel plates were subject to one, three and five centrally located indentations respectively. The acoustic response of the plate as a function of number of indentations was examined at a frequency range between 50 kHz and 800 kHz, from which the change in a global geometric phase was evaluated. Here, geometric phase is a measure of the topological acoustic field response to the spatial locations of the indentations within the steel plates. The global geometric phase unambiguously showed an increase with increasing number of indentations. In addition, spatial variations in a 'local' geometric phase as well as spatial variations in the SPC-index (SPC-I) were also determined. Spatial variations in both the local geometric phase as well as the SPC-I were particularly significant across the indentations for frequencies below 300 kHz, and by combining the respective spatial variations in the SPC-I and geometric phase, the locations of the indentations were accurately identified. The developed SPC-TA nondestructive method represents a promising technique for detecting and evaluating defects in structural materials.

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利用拓扑声传感和边带峰值计数监测板材缺陷。
我们展示了一种集成的无损检测方法,该方法采用基于非线性超声的边带峰值计数(SPC)技术与拓扑声学(TA)传感相结合,以全面表征包含不同程度损伤的钢板的声响应。通过将SPC技术与TA相结合,成功建立了对缺陷/损伤检测的灵敏度提高以及空间解决缺陷存在的能力。为此,使用洛氏硬度压头,钢板分别受到一个,三个和五个中心位置的压痕。在50 kHz和800 kHz之间的频率范围内,检测了板的声响应作为压痕数量的函数,从中评估了全局几何相位的变化。在这里,几何相位是对钢板内压痕空间位置的拓扑声场响应的度量。总体几何相位明显地随着缩进数的增加而增加。此外,还确定了“局部”几何相位的空间变化以及spc指数(SPC-I)的空间变化。在低于300 kHz的频率下,局部几何相位和SPC-I的空间变化在凹痕中尤为显著,通过结合各自的SPC-I和几何相位的空间变化,可以准确识别凹痕的位置。所开发的SPC-TA无损检测方法是一种很有前途的结构材料缺陷检测和评价技术。
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来源期刊
Ultrasonics
Ultrasonics 医学-核医学
CiteScore
7.60
自引率
19.00%
发文量
186
审稿时长
3.9 months
期刊介绍: Ultrasonics is the only internationally established journal which covers the entire field of ultrasound research and technology and all its many applications. Ultrasonics contains a variety of sections to keep readers fully informed and up-to-date on the whole spectrum of research and development throughout the world. Ultrasonics publishes papers of exceptional quality and of relevance to both academia and industry. Manuscripts in which ultrasonics is a central issue and not simply an incidental tool or minor issue, are welcomed. As well as top quality original research papers and review articles by world renowned experts, Ultrasonics also regularly features short communications, a calendar of forthcoming events and special issues dedicated to topical subjects.
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