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Detection of Crack Locations in Aluminum Alloy Structures Using FBG Sensors

机译:使用FBG传感器检测铝合金结构中的裂纹位置

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摘要

This study investigated the reflected spectral deformation mechanism of fiber Bragg grating (FBG) sensors with crack propagation. This analysis was performed based on the simulated FBG response by applying modified-transfer matrix modeling (TMM) with the strain states, which were extracted by the finite element method (FEM) analysis. Experimental data were obtained from FBG sensors bonded in an aluminum alloy structure and subjected to multiple crack lengths, and the strain values were obtained by digital image correlation (DIC) technology. Based on the simulations and the experimental full spectral response, we compared the performance of two damage features: The full width at half maximum (FWHM) and the spectral difference. In addition, results showed that the two features were insensitive to experimental noise and were highly sensitive to the complex strain field caused by crack propagation. Moreover, the damage features changes in the crack propagation process also provided a way for crack position measurement. Ultimately, the 10 mm grating lengths sensors showed better performance to the crack detection with longer sensitivity distance. According to the research in this paper, the crack position was quantitatively determined by evaluating different damage features of the reflected spectrum.
机译:这项研究调查了具有裂纹扩展的光纤布拉格光栅(FBG)传感器的反射光谱变形机理。该分析是基于模拟的FBG响应,通过应用带有有限元方法(FEM)分析提取的应变状态的修正传递矩阵模型(TMM)进行的。从粘结在铝合金结构中并经受多个裂纹长度的FBG传感器获得实验数据,并通过数字图像相关(DIC)技术获得应变值。基于仿真和实验的全光谱响应,我们比较了两个损伤特征的性能:半高全宽(FWHM)和光谱差异。此外,结果表明这两个特征对实验噪声不敏感,对裂纹扩展引起的复杂应变场高度敏感。而且,裂纹扩展过程中损伤特征的变化也为裂纹位置的测量提供了一种方法。最终,10 mm光栅长度传感器以更长的灵敏度距离表现出更好的裂纹检测性能。根据本文的研究,通过评估反射光谱的不同损伤特征来定量确定裂纹位置。

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