Li Wuyi, Huang Heng, Wan Boli, Pang Xiwen, Yan Guang
College of Aerospace Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
College of Instrument Science and Opto-Electronics Engineering, Beijing Information Science & Technology University, Beijing 100101, China.
Sensors (Basel). 2025 Aug 24;25(17):5259. doi: 10.3390/s25175259.
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.
碳纤维增强聚合物(CFRP)复合材料在长期使用过程中容易出现局部材料损失缺陷,这会严重降低其力学性能和结构可靠性。为了解决这个问题,本研究提出了一种结合嵌入式光纤布拉格光栅(FBG)传感器和表面安装电阻应变片的多传感器同步监测方法。首先,基于三维Hashin损伤准则进行了有限元模拟,以模拟CFRP层压板中的损伤起始和扩展过程,揭示了从初始缺陷形成到渐进破坏的完整损伤演化机制。这些模拟还用于确定最佳传感器布置策略。随后,根据ASTM D3039制备了带有预制缺陷的拉伸试验样品,并采用多传感器监测技术在整个损伤演化过程中采集多参数动态数据。实验结果表明,嵌入式FBG传感器和表面安装应变片能够有效地监测复合材料层压板结构内的局部材料损失缺陷。应变片测量结果显示,完整样品中所有测量点的应变分布均匀(偏差小于5%)。相比之下,在有缺陷的样品中,缺口边缘附近测量点的应变值明显高于远离缺口区域的应变值,这表明预制缺陷破坏了纤维的连续性并导致了应力重新分布。结果表明,表面安装应变片和嵌入式FBG传感器的联合使用能够准确可靠地跟踪有缺陷CFRP层压板的损伤演化行为。