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Estimation of strain of distorted FBG sensor spectra using a fixed FBGfilter circuit and an artificial neural network

机译:使用固定的FBGfilter电路和人工神经网络估算FBG传感器光谱失真的应变

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Fibre Bragg Grating (FBG) sensors are extremely sensitive to changes of strain, and are therefore an extremely useful candidate for Structural Health Monitoring (SHM) systems of composite structures. Sensitivity of FBGs to strain gradients originating from damage was observed as an indicator of initiation and propagation of damage in composite structures. To date there have been numerous research works done on distorted FBG spectra due to damage accumulation under controlled environments. Unfortunately, a number of related unresolved problems remain in FBG-based SHM systems development, making the present SHM systems unsuitable for real life applications. This paper reveals a novel configuration of FBG sensors to acquire strain reading and an integrated statistical approach to analyse data in real time. The proposed configuration has proven its capability to overcome practical constraints and the engineering challenges associated with FBG-based SHM systems. A fixed filter decoding system and an integrated artificial neural network algorithm for extracting strain from embedded FBG sensor were proposed and experimentally proved. Furthermore, the laboratory level experimental data was used to verify the accuracy of the system and it was found that the error levels were less than 0.3% in strain predictions.
机译:光纤布拉格光栅(FBG)传感器对应变变化非常敏感,因此是复合结构的结构健康监测(SHM)系统的极有用的候选者。观察到FBG对源自损伤的应变梯度的敏感性,作为复合结构中损伤的引发和传播的指标。迄今为止,由于在受控环境下的损伤积累,已经对变形的FBG光谱进行了大量研究工作。不幸的是,在基于FBG的SHM系统开发中仍然存在许多相关的未解决问题,这使得当前的SHM系统不适用于现实生活中的应用。本文揭示了一种用于获取应变读数的FBG传感器的新颖配置,以及一种用于实时分析数据的集成统计方法。所提出的配置已证明其具有克服实际限制和与基于FBG的SHM系统相关的工程挑战的能力。提出并通过实验证明了固定滤波器解码系统和集成人工神经网络算法从嵌入式FBG传感器中提取应变。此外,实验室水平的实验数据用于验证系统的准确性,并且发现应变预测中的误差水平小于0.3%。

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