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Composite Laminate Fatigue Damage Detection and Prognosis Using Embedded Fiber Bragg Gratings

机译:使用嵌入式光纤布拉格光栅的复合材料层压板疲劳损伤检测和预后

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In many structural applications the use of composite material systems in both retrofit and new design modes has expanded greatly. The performance benefits from composites such as weight reduction with increased strength, corrosion resistance, and improved thermal and acoustic properties, are balanced by a host of failure modes whose genesis and progression are not yet well understood. As such, structural health monitoring (SHM) plays a key role for in-situ assessment for the purposes of performance/operations optimization, maintenance planning, and overall life cycle cost reduction. In this work, arrays of fiber Bragg grating optical strain sensors are attached to glass-epoxy solid laminate composite specimens that were subsequently subjected to specific levels of fully reversed cyclic loading. The fatigue loading was designed to impose strain levels in the panel that would induce damage to the laminate at varying numbers of cycles. The objectives of this test series were to assess the ability of the fiber Bragg grating sensors to detect fatigue damage (using previously developed SHM algorithms) and to establish a dataset for the development of a prognostic model to be applied to a random magnitude of fully reversed strain loading. The prognostic approach is rooted in the Failure Forecast Method, whereby the periodic feature rate-of-change was regressed against time to arrive at a failure estimate. An uncertainty model for the predictor was built so that a probability density function could be computed around the time-of-failure estimate, from which mean, median, and mode predictors were compared for robustness.
机译:在许多结构应用中,复合材料系统在翻新和新设计模式中的使用已大大扩展。复合材料的性能优势(例如,重量减轻,强度增加,耐腐蚀性以及热和声学性能的提高)受到许多失效模式的平衡,这些失效模式的起源和进展尚未得到很好的理解。因此,结构性健康监测(SHM)在就性能/运营优化,维护计划和降低整个生命周期成本的目的进行现场评估中起着关键作用。在这项工作中,将光纤布拉格光栅光学应变传感器阵列连接到玻璃-环氧固体层压复合材料样品上,然后对这些样品进行特定水平的完全反向循环加载。设计疲劳载荷以在面板上施加应变水平,该应变水平将在不同的循环次数下对层压板造成损坏。该测试系列的目的是评估光纤布拉格光栅传感器检测疲劳损伤的能力(使用先前开发的SHM算法),并建立用于开发预测模型的数据集,该模型将应用于随机幅度完全反转的模型应变加载。预后方法基于“故障预测方法”,其中周期性的特征变化率随时间而回归,以得出故障估计值。建立了预测器的不确定性模型,以便可以在失效时间估计值附近计算概率密度函数,从中比较均值,中位数和模式预测器的鲁棒性。

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