Evaluation of Different Techniques of Active Thermography for Quantification of Artificial Defects in Fiber-Reinforced Composites Using Thermal and Phase Contrast Data Analysis

被引:0
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作者
Christiane Maierhofer
Mathias Röllig
Michael Gower
Maria Lodeiro
Graham Baker
Christian Monte
Albert Adibekyan
Berndt Gutschwager
Lenka Knazowicka
Ales Blahut
机构
[1] Bundesanstalt für Materialforschung und -prüfung (BAM),Division 8.7 Thermographic Methods
[2] National Physical Laboratory (NPL),Materials Division
[3] Physikalisch-Technische Bundesanstalt (PTB),Division 7.3 Detector Radiometry and Radiation Thermometry
[4] Czech Metrological Institute (CMI),Thermal Units Department – FM
来源
International Journal of Thermophysics | 2018年 / 39卷
关键词
Active thermography; CFRP; Delaminations; Flash excitation; Flat bottom holes; GFRP; Lock-in excitation; 10.105; 10.200;
D O I
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中图分类号
学科分类号
摘要
For assuring the safety and reliability of components and constructions in energy applications made of fiber-reinforced polymers (e.g., blades of wind turbines and tidal power plants, engine chassis, flexible oil and gas pipelines) innovative non-destructive testing methods are required. Within the European project VITCEA complementary methods (shearography, microwave, ultrasonics and thermography) have been further developed and validated. Together with partners from the industry, test specimens have been constructed and selected on-site containing different artificial and natural defect artefacts. As base materials, carbon and glass fibers in different orientations and layering embedded in different matrix materials (epoxy, polyamide) have been considered. In this contribution, the validation of flash and lock-in thermography to these testing problems is presented. Data analysis is based on thermal contrasts and phase evaluation techniques. Experimental data are compared to analytical and numerical models. Among others, the influence of two different types of artificial defects (flat bottom holes and delaminations) with varying diameters and depths and of two different materials (CFRP and GFRP) with unidirectional and quasi-isotropic fiber alignment is discussed.
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