基于零群速度Lamb波的增材制造部件质量评价

IF 2.4 3区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Meng Ren, Xiangdi Meng, Mingxi Deng
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引用次数: 0

摘要

在增材制造(AM)部件的生产过程中,孔洞、微裂纹等缺陷的出现会严重影响增材制造部件的物理力学性能。提出了一种利用零群速兰姆波对增材制造部件进行质量评价的有效方法。采用有限元方法详细分析了增材构件中S1-ZGV模态的位移分布和传播特性,研究了不同质量水平(以不同杨氏模量为特征)下S1-ZGV模态的变化规律。结果表明,调幅分量中的S1-ZGV模态以驻波形式分布,其时域波形贯穿整个时域。随着质量水平的降低,S1-ZGV模式的频率和谱幅值(SA)也相应降低,尤其是在材料状态良好时,S1-ZGV初始频率下的SA显著降低。这一观察结果为进行增材制造部件的有效质量评估提供了可靠的方法。随后,利用空气耦合超声换能器的节距捕捉技术在AM组件中成功激发了S1-ZGV模式,并定量观察了不同检测位置的SA,验证了该方法的有效性。实验结果表明,与传统的基于波速测量的线性超声技术相比,S1-ZGV初始频率下的SA可以更有效地评估AM组件的质量水平,这一点得到了光学显微镜图像的验证。这些结果验证了基于ZGV模式的SA在准确评估增材制造部件质量水平方面的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Quality Evaluation of Additive Manufacturing Components Based on Zero-Group-Velocity Lamb Waves

Quality Evaluation of Additive Manufacturing Components Based on Zero-Group-Velocity Lamb Waves

Quality Evaluation of Additive Manufacturing Components Based on Zero-Group-Velocity Lamb Waves

In the production process of additive manufacturing (AM) components, the occurrence of holes, microcracks, and other defects can seriously affect the physical and mechanical properties of AM components. This paper presents an effective method for quality evaluation of AM components utilizing zero-group-velocity (ZGV) Lamb waves. The displacement distribution and propagation characteristics of the S1-ZGV mode in the AM component are analyzed in detail by the finite element (FE) method, and the changes in the S1-ZGV mode under different quality levels (characterized by different Young’s moduli) are investigated. The results indicate that the S1-ZGV mode in the AM component is distributed in the form of standing waves, whose time-domain waveform persists throughout the entire time-domain. As the level of quality deteriorates, a corresponding reduction is observed in both the frequency and spectral amplitude (SA) of the S1-ZGV mode, and notably, the SA at the initial S1-ZGV frequency (in good material condition) significantly decreases. This observation provides a reliable method for conducting effective quality evaluation of AM components. Subsequently, the S1-ZGV mode is experimentally and successfully excited in the AM component using the pitch-catch technique with air-coupled ultrasonic transducers, and the SA at different detected positions is quantitatively observed to validate the effectiveness of the method. The experimental results reveal that compared to the traditional linear ultrasonic technique based on wave velocity measurement, the SA at the initial S1-ZGV frequency can more effectively evaluate the quality level of the AM component, which are verified by the optical microscope images. These results validate the effectiveness of the SA based on ZGV modes in accurately evaluating the quality level of the AM components.

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来源期刊
Journal of Nondestructive Evaluation
Journal of Nondestructive Evaluation 工程技术-材料科学:表征与测试
CiteScore
4.90
自引率
7.10%
发文量
67
审稿时长
9 months
期刊介绍: Journal of Nondestructive Evaluation provides a forum for the broad range of scientific and engineering activities involved in developing a quantitative nondestructive evaluation (NDE) capability. This interdisciplinary journal publishes papers on the development of new equipment, analyses, and approaches to nondestructive measurements.
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