This study proposes a high-resolution framework for defect detection and structural health monitoring in composite materials using a terahertz (THz)-based non-destructive testing (NDT) approach enhanced by deep image reconstruction. Experimental evaluations were conducted on Kevlar, glass fibre, and carbon fibre composites using THz time-domain spectroscopy. The framework integrates signal processing, machine learning, and statistical modelling to extract features such as absorption, reflection, and defect size. Principal component analysis, Random Forest feature ranking, and K-means clustering were used for defect classification and material characterisation. The proposed framework achieved a detection accuracy of 96.4%, outperforming conventional NDT techniques. Deep image reconstruction improved spatial resolution by 32%, enabling precise identification of micro-cracks, voids, and delamination. Weak-to-moderate correlations were observed between THz spectral features and defect propagation, demonstrating the effectiveness of THz imaging for real-time diagnostics. This research introduces a hybrid THz-based NDT framework combining advanced imaging and machine learning to improve defect quantification, classification, and prediction, supporting predictive maintenance and forensic failure analysis in aerospace, automotive, and civil infrastructure applications.
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23 July 2026
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Research Article|
December 23 2025
High-resolution defect detection in composite materials using terahertz NDT and deep reconstruction
Bouzidi Lamdjad
College of Commerce and Business,
Lusail University
, Lusail City, Qatar
Corresponding author Bouzidi Lamdjad (blamdjad@lu.edu.qa)
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Corresponding author Bouzidi Lamdjad (blamdjad@lu.edu.qa)
Publisher: Emerald Publishing
Received:
September 02 2025
Accepted:
October 14 2025
Online ISSN: 2043-9911
Print ISSN: 2043-9903
© 2025 Emerald Publishing Limited
2025
Emerald Publishing Limited
Licensed re-use rights only
Proceedings of the Institution of Civil Engineers - Forensic Engineering (2026) 179 (3): 101–115.
Article history
Received:
September 02 2025
Accepted:
October 14 2025
Citation
Lamdjad B (2026), "High-resolution defect detection in composite materials using terahertz NDT and deep reconstruction". Proceedings of the Institution of Civil Engineers - Forensic Engineering, Vol. 179 No. 3 pp. 101–115, doi: https://doi.org/10.1680/jfoen.25.00031
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