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Structural health monitoring data fusion for in-situ life prognosis of composite structures

机译:结构健康监测数据融合在复合结构现场寿命预测中的应用

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摘要

A novel framework to fuse structural health monitoring (SHM) data from different in-situ monitoring techniques is proposed aiming to develop a hyper-feature towards more effective prognostics. A state-of-the-art Non-Homogenous Hidden Semi Markov Model (NHHSMM) is utilized to model the damage accumulation of composite structures, subjected to fatigue loading, and estimate the remaining useful life (RUL) using conventional as well as fused SHM data. Acoustic Emission (AE) and Digital Image Correlation (DIC) are the selected in-situ SHM techniques. The proposed methodology is applied to open hole carbon/epoxy specimens under fatigue loading. RUL estimations utilizing features extracted from each SHM technique and after data fusion are compared, via established and newly proposed prognostic performance metrics.
机译:提出了一种融合来自不同现场监测技术的结构健康监测(SHM)数据的新颖框架,目的是朝着更有效的预测发展超特征。使用最新的非均质隐式半马尔可夫模型(NHHSMM)来对复合结构的损伤累积进行建模,使其承受疲劳载荷,并使用常规以及融合SHM来估算剩余使用寿命(RUL)数据。声发射(AE)和数字图像相关(DIC)是选择的原位SHM技术。所提出的方法适用于疲劳载荷下的裸眼碳/环氧树脂样品。通过建立和新提出的预测性能指标,比较了利用从每种SHM技术提取的特征以及数据融合之后的RUL估计。

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