Du Wenbo, Zheng Xing, Shi Bin, Sun Mengya, Wu Hao, Ni Weida, Zheng Zhenming, Niu Meifeng
POWERCHINA Huadong Engineering Corporation Limited, Hangzhou 311122, China.
College of Engineering, Ocean University of China, Qingdao 266100, China.
Sensors (Basel). 2023 Aug 2;23(15):6863. doi: 10.3390/s23156863.
Mastering the strain transfer mechanism in distributed fiber optic (DFO) sensors holds the key to analyzing strain measurement errors from DFO sensing systems. However, the impact of the monitored structure's strain distribution on the strain transfer mechanism in DFO sensors has often been overlooked in the existing research. To address this issue, a strain transfer model of surface-bonded DFO sensors with multilayered structures was established based on the shear lag theory. The closed-form solutions of the strain transfer coefficient of DFO sensors subjected to uniform, parabolic, single-linear gradient, and bilinear gradient strains were obtained. With a high-accuracy optical frequency-domain reflectometer (OFDR), the theoretical model was validated by laboratory tests. Upon parametric analysis, suggestions were further offered about designing and installing DFO sensors.
掌握分布式光纤(DFO)传感器中的应变传递机制是分析DFO传感系统应变测量误差的关键。然而,现有研究中常常忽略了被监测结构的应变分布对DFO传感器应变传递机制的影响。为解决这一问题,基于剪切滞后理论建立了具有多层结构的表面粘贴DFO传感器的应变传递模型。得到了DFO传感器在均匀应变、抛物线应变、单线性梯度应变和双线性梯度应变作用下应变传递系数的闭式解。利用高精度光频域反射仪(OFDR)通过实验室测试对理论模型进行了验证。通过参数分析,进一步给出了DFO传感器设计和安装的建议。