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Strain monitoring of a single-lap joint with embedded fiber-optic distributed sensors

机译:具有嵌入式光纤分布式传感器的单膝关节的应变监测

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We have developed a fiber-optic distributed sensor which can measure strain distributions along fiber Bragg grating (FBG) with the high spatial resolution. This sensing system is based on optical frequency domain reflectometry and a long-length FBG whose length is about 100 mm can be used. We can identify the longitudinal strain at an arbitrary position along the FBG using signal processing technology. In this study, long-length TBGs were embedded into the adhesive layers of the two single-lap joints and we could successfully measure the strain distributions inside the adhesives. In one single-lap joint, the adherends were carbon fiber reinforced plastics and in another one, they were aluminum. The adhesive was epoxy in both cases. The measured results were compared with the calculated ones by nonlinear finite element (FE) analysis in which the large displacement and the elasto-plastic response of the adherend or adhesive material were account for. We found that in most of the applied loads, the agreement between the measured results and the calculated ones obtained from an intact FE model is excellent. While the measured strain distributions inside the adhesive layer of the aluminum single-lap joint were varied at the end of the overlap in the higher applied loads and they were much different from those of the intact model, an FE model with debonding was made and it could represent such variations. We could also monitor the strain distributions inside the adhesive during the manufacturing process and we observed the perturbation in residual strain distributions after curing. Consequently, we can say that the fiber-optic distributed sensor with the high spatial resolution is very useful not only to assess the structural integrity of adhesive joints but also to improve numerical analysis techniques and manufacturing processes for them.
机译:我们开发了一种光纤分布式传感器,该传感器可以测量具有高空间分辨率的光纤布拉格光栅(FBG)上的应变分布。该传感系统基于光频域反射仪,可以使用长度约为100 mm的长FBG。我们可以使用信号处理技术识别沿FBG任意位置的纵向应变。在这项研究中,将长TBG嵌入到两个单搭接接头的粘合剂层中,我们可以成功地测量粘合剂内部的应变分布。在一个单搭接缝中,被粘物是碳纤维增强塑料,在另一种中,它们是铝。在两种情况下,粘合剂均为环氧树脂。通过非线性有限元(FE)分析将测量结果与计算结果进行比较,其中考虑了被粘物或粘合材料的大位移和弹塑性响应。我们发现,在大多数施加的载荷中,从完整的有限元模型获得的测量结果与计算结果之间的一致性非常好。尽管在较高的施加载荷下,铝单搭接接头的粘合剂层内部测得的应变分布在重叠的末端发生了变化,并且与完整模型的应力分布有很大不同,但制作了带有脱胶的有限元模型,可以代表这样的变化。我们还可以在制造过程中监控粘合剂内部的应变分布,并观察固化后残余应变分布的扰动。因此,可以说具有高空间分辨率的光纤分布式传感器不仅对评估胶粘接头的结构完整性非常有用,而且对改进其数值分析技术和制造工艺也非常有用。

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