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Analysis of high frequency guided wave scattering at a fastener hole with a view to fatigue crack detection

机译:快速裂纹检测的紧固件孔的高频导波散射分析

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The scattering of high frequency guided ultrasonic waves by a fatigue crack at the side of a fastener hole has been studied. The guided wave pulse consists of the superposition of the two fundamental Lamb modes A(o) and S-o above the cut-off frequencies of the higher modes. The scattered field was simulated using a three-dimensional finite difference algorithm with a staggered, Cartesian grid for the limited area of interest around the hole and an analytical phase angle correction for the additional, variable propagation distance. Experimentally, the modes were selectively excited using a standard ultrasonic wedge transducer and measured using a laser interferometer, resulting in good spatial resolution. The scattered field was measured and simulated for an undamaged hole, a small, part-thickness quarter-elliptical fatigue crack, and a through-thickness fatigue crack. Good agreement was found and a significant influence of the fatigue cracks on the scattered field was observed. The complex difference of the scattered field due to additional scattered waves at the fatigue cracks of variable depth and length was evaluated. This allows for the prediction of high frequency guided wave sensitivity for fatigue crack detection at fastener holes, a significant maintenance problem for ageing aircraft. (C) 2016 Elsevier B.V. All rights reserved.
机译:研究了高频引导超声波通过紧固件孔侧的疲劳裂缝散射。引导波脉冲由两个基本羊羔模式的叠加,在更高模式的截止频率之上的两个基本羊羔模式A(O)和S-O。使用三维有限差分算法模拟散射场,其具有交错的笛卡尔栅格,用于孔的有限感兴趣的区域和用于附加的可变传播距离的分析相角校正。通过实验,使用标准超声波楔形换能器选择性地激发模式,并使用激光干涉仪测量,从而产生良好的空间分辨率。测量散射场并模拟未损坏的孔,小,部分厚度四分之一 - 椭圆疲劳裂缝和贯穿厚度疲劳裂缝。发现了良好的协议,观察到疲劳裂缝对散射场的显着影响。评估了可变深度和长度疲劳裂缝的额外散射波引起的散射场的复杂差异。这允许预测紧固件孔的疲劳裂纹检测的高频引导波敏感性,老化飞机的显着维护问题。 (c)2016年Elsevier B.v.保留所有权利。

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