分布式光纤传感技术及应用综述

B. Glisic
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引用次数: 21

摘要

在过去几十年中,对结构健康监测的需求迅速增加,这些需求刺激了各种传感技术的发展。分布式光纤传感技术已经达到市场成熟,为结构健康监测开辟了新的可能性。分布式应变传感器(传感电缆)在其长度的每个点上对应变变化和裂缝都很敏感。这种传感器实际上监测一维应变场,可以安装在被监测结构构件的整个长度上,从而提供完整性监测,即直接检测和表征损伤产生的局部应变变化(包括识别、定位和量化或评级)。本文的目的是帮助研究人员和实践者熟悉分布式传感技术,理解分布式测量的含义,并了解这些技术的最佳性能和局限性。因此,本文简要介绍了光散射作为技术背后的主要物理原理,解释了空间分辨率作为解释测量结果的重要特征,比较了市场上各种分布式技术的性能,并介绍了适用于各种混凝土结构的完整性监测的概念。给出了两个说明性实例,包括在管道和桥梁中的应用。
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Distributed Fiber Optic Sensing Technologies and Applications – An Overview
Needs for structural health monitoring in the last decades were rapidly increasing, and these needs stimulated developments of various sensing technologies. Distributed optical fiber sensing technologies have reached market maturity and opened new possibilities in structural health monitoring. Distributed strain sensor (sensing cable) is sensitive at each point of its length to strain changes and cracks. Such a sensor practically monitors one-dimensional strain field and can be installed over all the entire length of the monitored structural members, and therefore provides for integrity monitoring, i.e. for direct detection and characterization of local strain changes generated by damage (including recognition, localization, and quantification or rating). The aim of this paper is to help researchers and practitioners to get familiar with distributed sensing technologies, to understand the meaning of the distributed measurement, and to learn on best performances and limitations of these technologies. Hence, this paper briefly present light scattering as the main physical principles behind technologies, explains the spatial resolution as the important feature for interpretation of measurements, compares performances of various distributed technologies found in the market, and introduces the concept of integrity monitoring applicable to various concrete structures. Two illustrative examples are presented, including applications to pipeline and bridge.
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