TY - JOUR
T1 - Enhanced damage imaging of BVID in CFRP using efficient local defect resonance identification
AU - Wei, Lunan
AU - Xiao, Youao
AU - Chen, Jun
AU - Lu, Lian
AU - Zhou, Yu
AU - Gao, Junqi
N1 - Publisher Copyright:
© 2025 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2025
Y1 - 2025
N2 - Nonlinear ultrasonic detection of carbon fibre reinforced polymers (CFRP) is recognised as effective for barely visible impact damage (BVID), but its sensitivity is often compromised by the masking of weak harmonic responses by noise. In this study, local defect resonance (LDR) spectroscopy is employed to improve BVID localisation under noise interference. A novel successive computing methodology (SCM) is proposed, integrating a validated 3D finite element (FE) model (calibrated via impact force-time history and delamination characteristics) with experimental scanning laser Doppler vibrometry. Critically, linear perturbation analysis performed directly on the impact-induced BVID model determines LDR frequency without requiring a priori defect location knowledge, simplified geometric assumptions, or cumbersome sweeping tests and signal reconstruction procedures. The identified LDR is validated using a proposed damage index, the maximum response amplitude (MRA) of harmonics, confirming that harmonic MRAs are amplified when the excitation frequency matches the LDR. The determined LDR frequency is then introduced into noisy nonlinear ultrasonic tests, resulting in significantly enhanced BVID imaging resolution despite noise disturbance. Quantitative assessment using the Michelson contrast metric confirms that high imaging contrast is maintained by LDR excitation even under significant noise interference, demonstrating its robustness for practical BVID detection.
AB - Nonlinear ultrasonic detection of carbon fibre reinforced polymers (CFRP) is recognised as effective for barely visible impact damage (BVID), but its sensitivity is often compromised by the masking of weak harmonic responses by noise. In this study, local defect resonance (LDR) spectroscopy is employed to improve BVID localisation under noise interference. A novel successive computing methodology (SCM) is proposed, integrating a validated 3D finite element (FE) model (calibrated via impact force-time history and delamination characteristics) with experimental scanning laser Doppler vibrometry. Critically, linear perturbation analysis performed directly on the impact-induced BVID model determines LDR frequency without requiring a priori defect location knowledge, simplified geometric assumptions, or cumbersome sweeping tests and signal reconstruction procedures. The identified LDR is validated using a proposed damage index, the maximum response amplitude (MRA) of harmonics, confirming that harmonic MRAs are amplified when the excitation frequency matches the LDR. The determined LDR frequency is then introduced into noisy nonlinear ultrasonic tests, resulting in significantly enhanced BVID imaging resolution despite noise disturbance. Quantitative assessment using the Michelson contrast metric confirms that high imaging contrast is maintained by LDR excitation even under significant noise interference, demonstrating its robustness for practical BVID detection.
KW - barely visible impact damage (BVID)
KW - carbon fibre reinforced polymers (CFRP)
KW - damage imaging
KW - local defect resonance
KW - nonlinear ultrasonics
UR - https://www.scopus.com/pages/publications/105020978042
U2 - 10.1080/10589759.2025.2581830
DO - 10.1080/10589759.2025.2581830
M3 - 文章
AN - SCOPUS:105020978042
SN - 1058-9759
JO - Nondestructive Testing and Evaluation
JF - Nondestructive Testing and Evaluation
ER -