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◆ Measurement Science and Technology2026-03-27· Materials science

Research on a strained sensing optical cable based on rectangular structure and weak fiber Bragg grating array

Lina Yue, Jia Yu, Yimin Xu, Xihua Wang, Sheng Li, Jinpeng Jiang

原始摘要(英文原文)· Original abstract
Abstract In the strain monitoring of high-traffic infrastructure, there is a growing demand for a strained sensing optical cable that provide high adaptability and accuracy without invasive installation. A rectangular structure optical fiber sensing cable based on weak fiber Bragg grating (wFBG) is proposed to satisfy these requirements in this research. The cable features a multilayer composite structure, consisting of an optical fiber inscribed with a dense array of wFBG and an outer protective layer made of either linear low-density polyethylene (LLDPE) or thermoplastic polyurethane. The rectangular geometry is designed to maximize surface contact, and thereby facilitate surface mounting. Two gluing methods are investigated, namely bonding with a carbon-fiber-reinforced polymer (CFRP) resin layer and fixation using 3 M™ double-sided adhesive tape. A theoretical strain transfer model is established to analyze the sensing performance, and experimental validation is conducted through a simply supported beam load test and hysteresis loop measurements. These results demonstrate that the LLDPE&CFRP configuration achieves the highest strain transfer efficiency of approximately 92.6%, with measurement errors below 3%. This configuration also exhibits the smallest hysteresis loop area, indicating superior elastic recovery and stable strain coupling. These characteristics highlight the potential of the proposed design as a reliable and high-performance solution for strain monitoring under complex installation and service conditions.
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