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Theoretical Analysis on Strain Transfer Error of FBG Sensors Attached on Steel Structures Subjected to Fatigue Load

机译:疲劳载荷作用下钢结构FBG传感器应变传递误差的理论分析

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摘要

Fibre Bragg grating (FBG) sensors have been increasingly adopted to detect the dynamic strain of structures. When the sensor is attached on the surface, adhesive material is employed to assist the installation, which leads to indirect contact of sensing fibre and the monitored structure. To correct the strain transfer error induced by the shear lag effect and improve the measurement accuracy of FBG sensors under dynamic response, strain transfer mechanism of a three-layered testing model constituted of sensing fibre, adhesive layer and host material has been studied in this paper. Laboratory test on steel beam attached with FBG sensor under fatigue load has been projected to investigate the feasibility of the derived strain transfer formula, and numerical simulation by MATLAB has been used as a supporting tool to offer the reference dynamic strain. Based on the analysis, sensitive parameters that affect the strain transfer coefficient have been discussed to instruct the application design of FBG sensors. Results indicate that strain transfer coefficient under dynamic response is much lower than that in static state, and error modification is particularly significant; in the dynamic testing model, bonded length, shear modulus and thickness of adhesive layer are more sensitive, which should be precisely selected in practical engineering to guarantee the effective strain measurement.
机译:越来越多地采用光纤布拉格光栅(FBG)传感器来检测结构的动态应变。当传感器附着在表面上时,将使用粘性材料来辅助安装,这将导致感应光纤与受监控结构的间接接触。为了校正剪切滞后效应引起的应变传递误差,提高FBG传感器在动态响应下的测量精度,研究了一种由传感纤维,粘合剂层和基质材料组成的三层测试模型的应变传递机理。 。计划在疲劳载荷下对装有FBG传感器的钢梁进行实验室测试,以研究导出的应变传递公式的可行性,并使用MATLAB的数值模拟作为支持工具来提供参考动态应变。在此基础上,讨论了影响应变传递系数的敏感参数,以指导FBG传感器的应用设计。结果表明,动态响应下的应变传递系数远低于静态下的传递系数,误差修正尤为重要。在动态测试模型中,粘合层的长度,剪切模量和粘合层的厚度较为敏感,在实际工程中应精确选择,以保证有效的应变测量。

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