多层粘合剂粘接材料深层界面脱粘缺陷的超声共振评估方法

IF 3.6 4区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Reviews on Advanced Materials Science Pub Date : 2024-03-27 DOI:10.1515/rams-2023-0172
Canzhi Guo, Chunguang Xu, Dingguo Xiao, Guanggui Cheng, Yan Zhong, Jianning Ding
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引用次数: 0

摘要

多层粘合结构/材料(MABS)被广泛用作结构部件,尤其是在航空航天领域。然而,对于 MABS 工件而言,由于各层的声衰减系数较大,深层界面脱粘缺陷(DB)的回声较弱,而且这种回声通常与表层的激励波和背壁回声相混淆,这给传统的纵波超声无损检测方法带来了巨大挑战。本文基于超声共振理论和 MABS 中超声波的混叠效应,提出了 MABS 深界面 DB 的超声共振评估方法。理论和仿真分析表明,当外壳厚度为 1.5 mm、乙丙橡胶(EPDM)厚度为 1.5 mm 时,II-界面 DB 的最佳检测频率为 500 kHz;当外壳厚度为 1.5 或 2.0 mm、乙丙橡胶厚度为 2.0 mm 时,最佳检测频率为 250 kHz。验证实验表明,在 II 接口中存在 DB 会导致共振效应,在相同的检测配置中,缺陷尺寸越大,这种效应越明显。这种共振效应表现为 A 扫描信号振幅的增加和振动时间的延长,以及接收到的超声波频率的明显变化。此外,激励电压的增加也进一步突出了超声共振效应。对 MABS 深界面 DB 超声共振评估的 C 扫描成像采用了四种成像方法--信号和信号包络曲线的积分、信号的快速傅立叶变换 (FFT) 最大振幅和信号能量,所有这些方法都能清晰地显示人工缺陷和内部天然缺陷的大小和位置。本研究提出的归一化 C 扫描成像方法可进一步突出 C 扫描图像中信号的微弱变化。本研究的研究成果为 MABS 的超声共振评价奠定了坚实的理论和实践基础。
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Ultrasonic resonance evaluation method for deep interfacial debonding defects of multilayer adhesive bonded materials
Multilayer adhesive bonded structures/materials (MABS) are widely used as structural components, especially in the field of aerospace. However, for MABS workpieces, the facts that the weak echo of the deep interfacial debonding defects (DB) caused by the large acoustic attenuation coefficient of each layer and this echo, which generally aliases with the excitation wave and the backwall echo of the surface layer, pose a great challenge for the conventional longitudinal wave ultrasonic nondestructive testing methods. In this work, an ultrasonic resonance evaluation method for deep interfacial DBs of MABS is proposed based on the ultrasonic resonance theory and the aliasing effect of ultrasonic waves in MABS. Theoretical and simulation analysis show that the optimal inspection frequency for II-interfacial DBs is 500 kHz when the shell thickness is 1.5 mm and the ethylene propylene diene monomer (EPDM) thickness is 1.5 mm, and the optimal inspection frequency is 250 kHz when the shell thickness is 1.5 or 2.0 mm and the EPDM thickness is 2.0 mm. Verification experiments show that the presence of a DB in the II-interface causes a resonance effect, and in the same inspection configuration, the larger the defect size, the more pronounced this effect is. This resonance effect manifests itself as an increase in the amplitude and an increase in the vibration time of the A-scan signal as well as a pronounced change in the frequency of the received ultrasonic wave. In addition, the increase in the excitation voltage further highlights the ultrasonic resonance effect. Four imaging methods – the integrations of the signal and the signal envelope curve, the maximum amplitude of the fast Fourier transform (FFT) of the signal, and the signal energy – were used for C-scan imaging of ultrasonic resonance evaluation of MABS’s deep interfacial DBs and all these methods can clearly show the sizes and locations of the artificial defects and internal natural defect. The normalized C-scan imaging method proposed in this study can further highlight the weak changes in the signals in the C-scan image. The research results of this study have laid a solid theoretical and practical foundation for the ultrasonic resonance evaluation of MABS.
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来源期刊
Reviews on Advanced Materials Science
Reviews on Advanced Materials Science 工程技术-材料科学:综合
CiteScore
5.10
自引率
11.10%
发文量
43
审稿时长
3.5 months
期刊介绍: Reviews on Advanced Materials Science is a fully peer-reviewed, open access, electronic journal that publishes significant, original and relevant works in the area of theoretical and experimental studies of advanced materials. The journal provides the readers with free, instant, and permanent access to all content worldwide; and the authors with extensive promotion of published articles, long-time preservation, language-correction services, no space constraints and immediate publication. Reviews on Advanced Materials Science is listed inter alia by Clarivate Analytics (formerly Thomson Reuters) - Current Contents/Physical, Chemical, and Earth Sciences (CC/PC&ES), JCR and SCIE. Our standard policy requires each paper to be reviewed by at least two Referees and the peer-review process is single-blind.
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