首页> 外文期刊>Advanced Composite Materials: The Official Journal of the Japan Society of Composite Materials >Fiber-optic-based life-cycle monitoring of through-thickness strain in thick CFRP pipes
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Fiber-optic-based life-cycle monitoring of through-thickness strain in thick CFRP pipes

机译:基于光纤的CFRP厚管贯穿厚度应变的生命周期监控

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CFRP pipes are used in spacecraft to support heavy optical instruments. CFRPs' low coefficients of thermal expansion and high stiffness improve the instrument performance. However, significant through-thickness strain arises in thick CFRP pipes in curing and operation at low temperature, resulting in delamination failure. In this study, we developed a fiber-optic-based life-cycle monitoring system to measure through-thickness strain development. First, we addressed the mechanism of strain development using a theoretical approach and finite element analysis (FEA). We confirmed that geometrical constraint arising from the cylindrical shapes causes significant out-of-plane stress in the through-thickness center, and the stress increases with increased thickness and stiffness. A fiber Bragg grating (FBG) sensor was then embedded at the through-thickness center of a pipe during lay-up. Non-axisymmetric strain change in the FBG sensor was continuously measured using the birefringence effect throughout the life cycle, including curing and simulated operation in a low temperature environment. Through comparison between pipe and plate specimens, it was clearly demonstrated that the system could sensitively capture through-thickness strain development and detect delamination failure in the pipe. In addition, FEA was conducted and the result agreed well with the experiment data, confirming the validity of the experiment results.
机译:CFRP管用于航天器以支撑重型光学仪器。 CFRP的低热膨胀系数和高刚度可改善仪器性能。但是,在低温固化和低温操作中,厚的CFRP管会产生很大的贯穿厚度应变,从而导致分层失败。在这项研究中,我们开发了一种基于光纤的生命周期监测系统,以测量全厚度应变的发展。首先,我们使用理论方法和有限元分析(FEA)解决了应变发展的机制。我们确认,由圆柱形状引起的几何约束会在整个厚度中心引起明显的平面外应力,并且应力会随着厚度和刚度的增加而增加。然后在铺设过程中,将光纤布拉格光栅(FBG)传感器嵌入到管道的整个厚度中心。 FBG传感器中的非轴对称应变变化是在整个生命周期中使用双折射效应连续测量的,包括在低温环境中的固化和模拟操作。通过比较管道和板样品,可以清楚地证明该系统可以灵敏地捕获厚度方向的应变发展并检测管道中的分层失败。另外,进行了有限元分析,结果与实验数据吻合良好,证实了实验结果的正确性。

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