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Research on FBG-Based CFRP Structural Damage Identification Using BP Neural Network

机译:基于FBG的BP神经网络的CFRP结构损伤识别研究。

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A damage identification system of carbon fiber reinforced plastics (CFRP) structures is investigated using fiber Bragg grating (FBG) sensors and back propagation (BP) neural network. FBG sensors are applied to construct the sensing network to detect the structural dynamic response signals generated by active actuation. The damage identification model is built based on the BP neural network. The dynamic signal characteristics extracted by the Fourier transform are the inputs, and the damage states are the outputs of the model. Besides, damages are simulated by placing lumped masses with different weights instead of inducing real damages, which is confirmed to be feasible by finite element analysis (FEA). At last, the damage identification system is verified on a CFRP plate with 300 mm × 300 mm experimental area, with the accurate identification of varied damage states. The system provides a practical way for CFRP structural damage identification.
机译:利用光纤布拉格光栅(FBG)传感器和反向传播(BP)神经网络研究了碳纤维增强塑料(CFRP)结构的损伤识别系统。 FBG传感器用于构建传感网络,以检测主动致动产生的结构动态响应信号。基于BP神经网络建立了损伤识别模型。通过傅里叶变换提取的动态信号特征是模型的输入,损伤状态是模型的输出。此外,通过放置具有不同权重的集总质量而不是引起实际损坏来模拟损坏,这通过有限元分析(FEA)证实是可行的。最后,在300mm×300mm实验面积的CFRP板上验证了损伤识别系统,可以准确识别各种损伤状态。该系统为CFRP的结构损伤识别提供了一种实用的方法。

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