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August 24, 2025Sensors0 citationsOpen Access

Structural Health Monitoring of Defective Carbon Fiber Reinforced Polymer Composites Based on Multi-Sensor Technology

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WLWuyi LiHHHeng HuangBWBao-Fei Wan

Key Points

  • Localized material loss defects in CFRP were monitored effectively using multi-sensor techniques, enhancing structural reliability.
  • Experiments showed that strain gauges indicated uniform strain in intact specimens, while defects caused stress redistribution near notches.
  • Finite element simulations were utilized to visualize damage processes and inform sensor placement, ensuring optimal monitoring conditions.
  • Combined use of FBG sensors and strain gauges provides accurate tracking of defects in CFRP, essential for long-term maintenance evaluation.

Abstract

Carbon fiber reinforced polymer (CFRP) composites are prone to developing localized material loss defects during long-term service, which can severely degrade their mechanical properties and structural reliability. To address this issue, this study proposes a multi-sensor synchronous monitoring method combining embedded fiber Bragg grating (FBG) sensors and surface-mounted electrical resistance strain gauges. First, finite element simulations based on the three-dimensional Hashin damage criterion were performed to simulate the damage initiation and propagation processes in CFRP laminates, revealing the complete damage evolution mechanism from initial defect formation to progressive failure. The simulations were also used to determine the optimal sensor placement strategy. Subsequently, tensile test specimens with prefabricated defects were prepared in accordance with ASTM D3039, and multi-sensor monitoring techniques were employed to capture multi-parameter, dynamic data throughout the damage evolution process. The experimental results indicate that embedded FBG sensors and surface-mounted strain gauges can effectively monitor localized material loss defects within composite laminate structures. Strain gauge measurements showed uniform strain distribution at all measuring points in intact specimens (with deviations less than 5%). In contrast, in defective specimens, strain values at measurement points near the notch edge were significantly higher than those in regions farther from the notch, indicating that the prefabricated defect disrupted fiber continuity and induced stress redistribution. The combined use of surface-mounted strain gauges and embedded FBG sensors was demonstrated to accurately and reliably track the damage evolution behavior of defective CFRP laminates.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/68af5d69ad7bf08b1eae0ca6https://doi.org/10.3390/s25175259
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