Depth classification of defects in composite materials by long-pulsed thermography and blind linear unmixing

被引:11
|
作者
Marani, Roberto [1 ]
Campos-Delgado, Daniel U. [2 ]
机构
[1] Natl Res Inst Italy, Inst Intelligent Ind Technol & Syst Adv Manufacto, CNR, Via Amendola 122, D-O, I-70126 Bari, Italy
[2] Univ Autonoma San Luis Potosi, Fac Ciencias, Inst Invest Comunicac Opt, San Luis Potosi 78290, Mexico
关键词
Active IR thermography; Defect detection and classification; Linear mixture model; Blind end-member and abundance extraction; Support vector machine; MULTIVARIATE CURVE RESOLUTION; CFRP; EXTRACTION; IMPACT; DAMAGE;
D O I
10.1016/j.compositesb.2022.110359
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper presents the automatic analysis of surface thermograms in response to a long-pulsed thermography inspection to classify buried defects in composite materials. Time-dependent thermal contrasts, captured from the sample surface by an infrared thermal camera, are linearly unmixed at the pixel scale to produce results independent of the in-plane defect shapes in the training dataset. The extended blind end-member and abundance extraction (EBEAE) method unmix the thermograms to compute feature vectors carrying information about the internal structure of the composite. The estimated abundances fed an optimized support vector machine (SVM) classifier, which learns a model from the data and labels the defects accordingly to their depths. The inspection of a calibrated glass fiber reinforced polymer proves the ability of EBEAE and SVM in defect classification with an average balanced accuracy of 96.18% in testing. This methodology clearly improves the current state of the art, even without the need for inspections with different source excitations. Furthermore, the estimated end-members automatically model the thermal response of the surface, providing crucial feedback for experimental optimization.
引用
收藏
页数:10
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