Mutual interaction of guided waves having mixed polarity for early detection of material degradation

IF 2 Q2 ENGINEERING, MULTIDISCIPLINARY
C. Lissenden, Anurup Guha, Mostafa Hasanian
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引用次数: 0

Abstract

Guided wave mixing leverages mutual wave interactions to provide sensitive diagnostics of material degradation in plates and pipes and an early warning upon which maintenance decisions can be based. In some cases, the material to be interrogated may be otherwise inaccessible for nondestructive evaluation. The distortion of the waveform in nonlinear ultrasonics is typically quite small, often making it difficult to distinguish from nonlinearities in the sensing system. Mutual wave interactions are preferred to wave self-interactions in this respect because they can be designed to occur away from frequencies corrupted by sensing system nonlinearity. Furthermore, primary waves that generate secondary waves having a different polarity also provide a means to separate the material nonlinearity from the sensing system nonlinearity. Finite element simulations of wave mixing using a hyperelastic material model are conducted as a precursor to laboratory experiments in order to establish realistic expectations. In one case shear-horizontal waves are mixed with co-directional symmetric Lamb waves to generate back-propagating shear-horizontal waves at the difference frequency. In the second case counter-propagating shear-horizontal waves mix to generate secondary standing waves at the cutoff frequency of the S1 Lamb wave mode. In both cases the results indicate that the larger the wave mixing zone, the more measurable is the amplitude of the secondary waves. These results will be used to design experiments that demonstrate the utility of these novel wave interactions.
具有混合极性的导波的相互作用,用于材料退化的早期检测
导波混合利用相互波的相互作用,对板材和管道中的材料退化提供敏感的诊断,并在此基础上做出维护决策。在某些情况下,要检查的材料可能无法进行无损评估。非线性超声波形的畸变通常相当小,通常使其难以与传感系统中的非线性相区分。在这方面,互波相互作用比波自相互作用更可取,因为它们可以被设计成远离被传感系统非线性破坏的频率。此外,产生具有不同极性的次波的一次波也提供了一种将材料非线性与传感系统非线性分离的方法。利用超弹性材料模型进行了波混合的有限元模拟,作为实验室实验的先驱,以建立切合实际的期望。在一种情况下,剪切水平波与同向对称兰姆波混合产生差频反向传播剪切水平波。在第二种情况下,反向传播的剪切波与水平波混合在S1 Lamb波模态的截止频率处产生二次驻波。两种情况下的结果都表明,混合波区越大,二次波的振幅越容易测量。这些结果将用于设计实验,以证明这些新的波相互作用的效用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.80
自引率
9.10%
发文量
25
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