Affiliation:
1. Xiangtan University, College of Civil Engineering, Xiangtan 411105, P. R. China
2. Lanzhou University, Collage of Civil Engineering and Mechanics, Lanzhou 730000, P. R. China
3. Central South University, School of Civil Engineering, Changsha 410083, P. R. China
4. School of Civil Engineering, Taishan University, Taian 271000, Shandong, P. R. China
Abstract
Optical fiber grating strain sensors are currently utilized in a variety of structural health monitoring applications. The encapsulated fiber optic sensor is unable to completely detect the strain of the structure, so the strain transfer theory should be established to maximize the strain sensing of fiber. It is required to explore the embedded four-layer fiber optic sensing model to create a more plausible strain transfer error hypothesis. Based on the three-layer fiber optic sensing model, the Goodman assumption and Fourier series approach were presented to study the strain transfer efficiency of the four-layer model in the elastic state. First, the physical quantity to be analyzed is determined, and finally the radius, interlayer bonding coefficient and elastic modulus are selected as the parameters affecting the strain transfer efficiency. The length range of efficiency evaluation is 0–2.5[Formula: see text]m, and the transfer efficiency under different radii is above 0.90 when the length [Formula: see text][Formula: see text]m. The interlayer bonding coefficient [Formula: see text] between [Formula: see text][Formula: see text]N/m3 and [Formula: see text][Formula: see text]N/m3 has little impact on the transfer efficiency, and the same is true for [Formula: see text], so it cannot be considered in practice. When [Formula: see text] is between [Formula: see text][Formula: see text]N/m3 and [Formula: see text][Formula: see text]N/m3 and the length [Formula: see text][Formula: see text]m, the strain transfer coefficient reaches 95%. The influence of elastic modulus on the transfer efficiency is very significant when [Formula: see text][Formula: see text]m. The four-layer model performs similarly to the three-layer model within the paste length range of 1.0[Formula: see text]m, but has a superior strain transfer effect when the pasted length exceeds 1.0[Formula: see text]m. As the radius of the protective layer rises, the effect of strain transfer deteriorates.
Funder
National Key Research program of China
Science Fund for Distinguished Young Scholars of Hunan
The Key R&D Program of Hunan Province
The Natural Science Foundation of Hunan Province, China
The Innovative Venture Technology Investment Project of Hunan Province
The Major Program of Science and Technology of the Hunan Province
Program of Science and Technology of the Hunan Province
Hunan 100talent plan, Hunan high-level talent plan
The National Natural Science Foundation of China
Central South University Research Project
Publisher
World Scientific Pub Co Pte Ltd