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基于密集超短光纤布拉格光栅传感器的高密度分布式裂纹尖端传感系统。

High-Density Distributed Crack Tip Sensing System Using Dense Ultra-Short FBG Sensors.

机构信息

School of Information Engineering, Wuhan University of Technology, Wuhan 430070, China.

National Engineering Laboratory for Fiber Optic Sensing Technology, Wuhan University of Technology, Wuhan 430070, China.

出版信息

Sensors (Basel). 2019 Apr 10;19(7):1702. doi: 10.3390/s19071702.

Abstract

Crack generation starts at the crack tip, which bears the highest stress concentration. Under further stress, the crack propagates and leads to severe structural damage. To avoid such damage, the identification of the crack tips, and monitoring of the surrounding stress and strain fields, are very important. In this work, the location of, and strain distribution monitoring around, the crack tip are achieved using a dense ultra-short (DUS) fiber Bragg grating (FBG) array together with an improved optical frequency domain reflectometry (OFDR) interrogator. The adjacent grating interference correlation algorithm helps overcome the limitation on the demodulation precision, which is imposed by the inherently broad reflection spectra of individual ultra-short gratings. High spatial resolution measurement of the strain profile around the crack tip is performed at different levels of induced strain. Furthermore, the vertical-crossed layout is adopted to avoid the omission of cracks, which usually occurs in the case of the one direction layout. We achieve 1 mm spatial resolution and 7.5 m detection distance. Location of a single crack, multiple cracks, and an oblique crack was realized experimentally by locating the crack tips. The experimental results are consistent with the theoretical analysis, verifying the feasibility of the DUS-FBG system for high-density distributed crack tip sensing.

摘要

裂纹的产生始于承受最大应力集中的裂纹尖端。在进一步的应力作用下,裂纹会扩展并导致严重的结构损坏。为了避免这种损坏,识别裂纹尖端并监测周围的应力和应变场非常重要。在这项工作中,使用密集型超短(DUS)光纤布拉格光栅(FBG)阵列和改进的光学频域反射计(OFDR)干涉仪实现了裂纹尖端的位置和应变分布监测。相邻光栅干涉相关算法有助于克服固有宽带单个超短光栅反射光谱对解调精度的限制。在不同的诱导应变水平下,对裂纹尖端周围的应变分布进行了高空间分辨率测量。此外,采用垂直交叉布局避免了在单向布局中经常出现的裂纹遗漏。我们实现了 1mm 的空间分辨率和 7.5m 的检测距离。通过定位裂纹尖端,实验实现了单个裂纹、多个裂纹和斜裂纹的定位。实验结果与理论分析一致,验证了 DUS-FBG 系统用于高密度分布式裂纹尖端传感的可行性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2423/6479380/bb0e94f83ffd/sensors-19-01702-g001.jpg

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