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A quantitative identification approach for delamination in laminated composite beams using digital damage fingerprints (DDFs)

机译:使用数字损伤指纹(DDF)的复合材料层合板分层定量识别方法

摘要

Digital damage fingerprints (DDFs) are a set of optimised and digitised characteristics of structural signatures, which are able to exactly and uniquely define a certain kind of structural healthy status. The DDF-based damage recognition technique includes the extraction of DDFs, assembly of damage parameters database (DPD) and subsequently inverse recognition in virtue of artificial intelligence. In this study, DDFs extracted from Lamb wave signals were employed to quantitatively assess delamination in carbon fibre-reinforced laminated beams. Characteristics of Lamb wave signals in the laminated beams were first evaluated, and DPD hosting DDFs for selected damage scenarios was constructed through numerical simulations, which was used to predict delamination in the composite beams with the aid of an artificial neural algorithm. The diagnostic results have demonstrated the excellent performance of DDF technique for quantitative damage identification.
机译:数字损伤指纹(DDF)是一组结构特征的优化和数字化特征,能够准确且唯一地定义某种结构健康状态。基于DDF的损伤识别技术包括DDF的提取,损伤参数数据库(DPD)的组装以及随后借助人工智能的逆向识别。在这项研究中,从兰姆波信号中提取的DDF用于定量评估碳纤维增强层压梁中的分层。首先评估了层合梁中的兰姆波信号的特性,并通过数值模拟构建了DPD承载DDF的选定损伤场景,并借助人工神经算法预测了层合梁中的分层。诊断结果证明了DDF技术在定量损伤识别中的出色性能。

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