Defect localization in heterogeneous plate structures using the geometric phase change – index of Lamb waves

IF 4.1 2区 物理与天体物理 Q1 ACOUSTICS Ultrasonics Pub Date : 2025-03-31 DOI:10.1016/j.ultras.2025.107654
Guangdong Zhang , Tribikram Kundu , Pierre A. Deymier , Keith Runge
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Abstract

Defect localization in homogeneous structures using ultrasonic waves is relatively easy to implement. However, locating defects in heterogeneous structures made of different materials can be challenging. This is because complicated reflections, refractions and scatterings occur when ultrasonic waves pass through the interfaces between two dissimilar materials of the heterogeneous structures. To address this issue, a localization methodology based on geometric phase change – index (GPC-I), derived from topological acoustic (TA) sensing, is proposed to adapt to the complicated scenarios when defects are present in heterogeneous plate structures. The GPC-I is adopted as the damage index (DI) to present the possibility of defects appearing on different acoustic sensing paths. A maximum peak value-dependent threshold in GPC-I plots (GPC-I vs. sensor sites) is defined to filter out unreliable sensing paths resulting from the heterogeneity. Different sensing modes (I and II) are combined to comprehensively provide a more reliable and accurate localization framework. Numerical modeling carried out by Abaqus/CAE software verifies the proposed GPC-I based localization technique. Comparison results among GPC-I and other two commonly used acoustic parameters—wave velocity differences (VD) and amplitude ratio (AR) (or wave attenuation) show that the GPC-I has superiority with higher sensitivity and stability for defect localization. This work can provide promising guidance for localizing defects in complex heterogeneous plate structures used in real-world engineering applications.
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基于兰姆波几何相变指数的非均质板结构缺陷定位
利用超声波对均匀结构进行缺陷定位相对容易实现。然而,在由不同材料制成的非均质结构中定位缺陷是具有挑战性的。这是因为当超声波通过异质结构的两种不同材料之间的界面时,会发生复杂的反射、折射和散射。为了解决这一问题,提出了一种基于几何相变指数(GPC-I)的定位方法,该方法来源于拓扑声学(TA)传感,以适应非均质板结构中存在缺陷时的复杂情况。采用GPC-I作为损伤指数(DI)来表示在不同声传感路径上出现缺陷的可能性。定义了GPC-I图(GPC-I与传感器站点)中最大峰值相关阈值,以过滤掉由异质性导致的不可靠传感路径。不同的传感模式(I和II)相结合,综合提供更可靠、更准确的定位框架。利用Abaqus/CAE软件进行数值模拟,验证了基于GPC-I的定位技术。将GPC-I与常用的两种声学参数——波速差(VD)和振幅比(AR)(或波衰减)进行比较,结果表明GPC-I具有较高的缺陷定位灵敏度和稳定性。这项工作为实际工程应用中复杂非均质板结构缺陷的定位提供了有希望的指导。
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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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