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Deep-Subwavelength-Optimized Holey-Structured Metamaterial Lens for Nonlinear Air-Coupled Ultrasonic Imaging

机译:用于非线性空气耦合超声成像的深层亚波长优化的超透镜

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摘要

Ultrasound non-destructive testing (NDT) is a common technique used for defect detection in different materials, from aluminium to carbon-fiber-reinforced polymers (CFRPs). In most cases, a liquid coupling medium/immersion of the inspected component is required to maximize impedance matching, limiting the size of the structure and materials. Air-coupled inspection methods have recently been developed for noncontact inspections to reduce contact issues in standard ultrasonic inspections. However, transmission of ultrasound in air is very inefficient because of the enormous impedance mismatch between solids and air, thus requiring a signal amplification system of high-sensitivity transducers. Hence, the captured signal amplitude may not be high enough to reveal any wave distortion due to defects or damage. This work presents a design of a holey-structured metamaterial lens with a feature size of λ/14 aiming at improvement of acousto-ultrasonic imaging using air-coupled transducers. The required effect is obtained by matching geometrical parameters of the proposed holey-structured metamaterials and the Fabry–Perot resonance modes of the structure. Transmission tests have been conducted on different fabricated metamaterial-based structures, to assess the frequency component filtering of the proposed method in both acoustic (f = 5 kHz, 20 kHz) and ultrasonic range (f = 30 kHz, 40 kHz). Results showed an improved sensitivity of damage imaging, with an increase in amplitude of the design frequencies of the lens by 11 dB. Air-coupled inspections were conducted on a stress-corrosion cracked aluminum plate and impacted CFRP plate using the holey-structured lens. Results showed an improvement in the damage-imaging resolution due to a wave-amplitude increase across the defective features, thus demonstrating its potential as an efficient and sensitive inspection tool for damage-detection improvement in geometrically complex components of different materials.
机译:超声波非破坏性测试(NDT)是一种用于不同材料缺陷检测的常用技术,从铝到碳纤维增强聚合物(CFRP)。在大多数情况下,所需的液体耦合介质/浸入检查部件的浸入介质以最大化阻抗匹配,限制结构和材料的尺寸。最近已经开发了空气耦合检测方法,用于不接触检查,以减少标准超声检查中的接触问题。然而,由于固体和空气之间的巨大阻抗不匹配,因此超声波在空气中的传输非常低效率,因此需要高灵敏度传感器的信号放大系统。因此,捕获的信号幅度可能不足以透露由于缺陷或损坏引起的任何波浪失真。这项工作介绍了具有λ/ 14的特征尺寸的多孔结构化的超透镜的设计,旨在使用空气耦合换能器改善声学超声波成像。通过匹配所提出的孔结构化超材料的几何参数和结构的法布里 - 珀罗共振模式来获得所需的效果。已经在不同制造的基础基础结构上进行了传输测试,以评估所提出的方法在声学(F = 5kHz,20kHz)中的频率分量滤波和超声波范围(F = 30kHz,40 kHz)。结果显示出改善损伤成像的灵敏度,随着镜头的设计频率的幅度增加11dB。在应力腐蚀裂纹铝板上进行空气耦合检查,使用孔结构透镜撞击CFRP板。结果表明,由于缺陷特征的波浪幅度增加,损伤成像分辨率的提高,从而证明其作为用于不同材料的几何复杂部件的损伤检测改善的有效和敏感的检查工具。

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