Advanced search
2 files | 14.90 MB Add to list

Vibrothermographic spectroscopy with thermal latency compensation for effective identification of local defect resonance frequencies of a CFRP with BVID

Saeid Hedayatrasa (UGent) , Joost Segers (UGent) , Gaétan Poelman (UGent) , Erik Verboven (UGent) , Wim Van Paepegem (UGent) and Mathias Kersemans (UGent)
Author
Organization
Abstract
Vibrothermography using sinusoidal vibration excitation at the resonance frequencies of a defected area (so-called local defect resonance, or LDR) is a promising technique to boost the defect's deformation and its interfacial interactions and as such enhance resultant vibration-induced heating. Contrary to the classical high-power vibrothermography, low power excitation at an LDR frequency results in a reproducible thermal response and adequate quantification of the corresponding damage features. However, the technique is mainly limited by the fact that it requires a priori knowledge of the LDR frequencies (e.g. obtained from prior vibrational measurements). To overcome this limitation, a stand-alone vibrothermographic spectroscopy procedure is introduced in this paper. The proposed technique applies two consecutive broadband sweep vibrational excitations with ascending and descending frequency modulation rates to the sample. The surface of the excited sample is monitored with an IR camera. Both time derivative analysis and superposition of the recorded thermal responses are performed in order to compensate for the thermal latency of the defect-induced heating. This compensation approach enables proper identification of the actual LDR frequencies based on the apparent LDR frequencies of the thermal response. The method is applied on a carbon fiber reinforced polymer (CFRP) with barely visible impact damage (BVID), and multiple LDR frequencies are readily identified. The identified LDR frequencies are also individually evaluated by both lock-in vibrothermography and 3D scanning laser Doppler vibrometry, confirming the competence of the proposed technique for extracting LDR frequencies in a proper and fast way.
Keywords
Mechanical Engineering, General Materials Science, Condensed Matter Physics. Vibrothermography Broadband sweep Local defect resonance (LDR) Thermal latency BVID CFRP, Vibrothermography, Broadband sweep, Local defect resonance (LDR), Thermal latency, BVID, CFRP, DAMAGE DETECTION, IMPACT DAMAGE, THERMOGRAPHY, EFFICIENT, POLYMERS

Downloads

  • 2019 10 PreProof SymVT LDR.pdf
    • full text (Accepted manuscript)
    • |
    • open access
    • |
    • PDF
    • |
    • 5.20 MB
  • (...).pdf
    • full text (Published version)
    • |
    • UGent only
    • |
    • PDF
    • |
    • 9.69 MB

Citation

Please use this url to cite or link to this publication:

MLA
Hedayatrasa, Saeid, et al. “Vibrothermographic Spectroscopy with Thermal Latency Compensation for Effective Identification of Local Defect Resonance Frequencies of a CFRP with BVID.” NDT & E INTERNATIONAL, vol. 109, 2020, doi:10.1016/j.ndteint.2019.102179.
APA
Hedayatrasa, S., Segers, J., Poelman, G., Verboven, E., Van Paepegem, W., & Kersemans, M. (2020). Vibrothermographic spectroscopy with thermal latency compensation for effective identification of local defect resonance frequencies of a CFRP with BVID. NDT & E INTERNATIONAL, 109. https://doi.org/10.1016/j.ndteint.2019.102179
Chicago author-date
Hedayatrasa, Saeid, Joost Segers, Gaétan Poelman, Erik Verboven, Wim Van Paepegem, and Mathias Kersemans. 2020. “Vibrothermographic Spectroscopy with Thermal Latency Compensation for Effective Identification of Local Defect Resonance Frequencies of a CFRP with BVID.” NDT & E INTERNATIONAL 109. https://doi.org/10.1016/j.ndteint.2019.102179.
Chicago author-date (all authors)
Hedayatrasa, Saeid, Joost Segers, Gaétan Poelman, Erik Verboven, Wim Van Paepegem, and Mathias Kersemans. 2020. “Vibrothermographic Spectroscopy with Thermal Latency Compensation for Effective Identification of Local Defect Resonance Frequencies of a CFRP with BVID.” NDT & E INTERNATIONAL 109. doi:10.1016/j.ndteint.2019.102179.
Vancouver
1.
Hedayatrasa S, Segers J, Poelman G, Verboven E, Van Paepegem W, Kersemans M. Vibrothermographic spectroscopy with thermal latency compensation for effective identification of local defect resonance frequencies of a CFRP with BVID. NDT & E INTERNATIONAL. 2020;109.
IEEE
[1]
S. Hedayatrasa, J. Segers, G. Poelman, E. Verboven, W. Van Paepegem, and M. Kersemans, “Vibrothermographic spectroscopy with thermal latency compensation for effective identification of local defect resonance frequencies of a CFRP with BVID,” NDT & E INTERNATIONAL, vol. 109, 2020.
@article{8636463,
  abstract     = {{Vibrothermography using sinusoidal vibration excitation at the resonance frequencies of a defected area (so-called local defect resonance, or LDR) is a promising technique to boost the defect's deformation and its interfacial interactions and as such enhance resultant vibration-induced heating. Contrary to the classical high-power vibrothermography, low power excitation at an LDR frequency results in a reproducible thermal response and adequate quantification of the corresponding damage features. However, the technique is mainly limited by the fact that it requires a priori knowledge of the LDR frequencies (e.g. obtained from prior vibrational measurements). To overcome this limitation, a stand-alone vibrothermographic spectroscopy procedure is introduced in this paper. The proposed technique applies two consecutive broadband sweep vibrational excitations with ascending and descending frequency modulation rates to the sample. The surface of the excited sample is monitored with an IR camera. Both time derivative analysis and superposition of the recorded thermal responses are performed in order to compensate for the thermal latency of the defect-induced heating. This compensation approach enables proper identification of the actual LDR frequencies based on the apparent LDR frequencies of the thermal response. The method is applied on a carbon fiber reinforced polymer (CFRP) with barely visible impact damage (BVID), and multiple LDR frequencies are readily identified. The identified LDR frequencies are also individually evaluated by both lock-in vibrothermography and 3D scanning laser Doppler vibrometry, confirming the competence of the proposed technique for extracting LDR frequencies in a proper and fast way.}},
  articleno    = {{102179}},
  author       = {{Hedayatrasa, Saeid and Segers, Joost and Poelman, Gaétan and Verboven, Erik and Van Paepegem, Wim and Kersemans, Mathias}},
  issn         = {{1879-1174}},
  journal      = {{NDT & E INTERNATIONAL}},
  keywords     = {{Mechanical Engineering,General Materials Science,Condensed Matter Physics. Vibrothermography Broadband sweep Local defect resonance (LDR) Thermal latency BVID CFRP,Vibrothermography,Broadband sweep,Local defect resonance (LDR),Thermal latency,BVID,CFRP,DAMAGE DETECTION,IMPACT DAMAGE,THERMOGRAPHY,EFFICIENT,POLYMERS}},
  language     = {{eng}},
  pages        = {{7}},
  title        = {{Vibrothermographic spectroscopy with thermal latency compensation for effective identification of local defect resonance frequencies of a CFRP with BVID}},
  url          = {{http://doi.org/10.1016/j.ndteint.2019.102179}},
  volume       = {{109}},
  year         = {{2020}},
}

Altmetric
View in Altmetric
Web of Science
Times cited: