Auteur | Rechercher : Ashrafi, B.1Identifiant ORCID : https://orcid.org/0000-0002-8227-3170; Rechercher : Johnson, L.1; Rechercher : Martinez-Rubi, Y.2Identifiant ORCID : https://orcid.org/0000-0002-1548-6504; Rechercher : Martinez, M.1; Rechercher : Simard, B.2; Rechercher : Mrad, N.; Rechercher : Johnston, A.1 |
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Affiliation | - Conseil national de recherches du Canada. Aérospatiale
- Conseil national de recherches du Canada. Institut Steacie des sciences moléculaires du CNRC
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Format | Texte, Article |
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Conférence | 26th Annual Technical Conference of the American Society for Composites 2011 and the 2nd Joint US-Canada Conference on Composites, September 26-28, 2011, Montreal, Quebec, Canada |
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Sujet | aluminum; continuous monitoring; crack evolution; crack length; crack monitoring; crack sensors; crack surfaces; cracks; electrical and mechanical properties; electrical discharges; electric discharges; epoxy nanocomposites; epoxy resins; fatigue testing; fatigue cycles; growth monitoring; host structure; linear correlation; measured currents; mechanical properties; metallic hosts; metallic structures; nanocomposite thin films; nanocomposite films; nanocomposites; resistance change; stable modes; sensors; single-walled carbon nanotubes (SWCN); structure (composition); visual inspection |
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Résumé | This work focuses on the application of epoxy nanocomposite thin film sensors for continuous monitoring of crack evolution in metallic structures. The approach taken was to monitor the current or resistance change in these nanocomposite films as cracks developed and propagated in the metallic host structure. Based on optical, electrical and mechanical properties of epoxy resins modified with different contents of single-walled carbon nanotubes (SWCNT), two different nanocomposites (with 0.3 wt% and 1.0 wt% of SWCNT) were chosen for the development of a crack sensor. The performance of the nanocomposite sensors was evaluated under tension-tension fatigue tests on aluminum coupons with centrally located through thickness electrical discharge machined (EDM) notches. Crack growth in the aluminum was found to transfer to the nanocomposite films in a stable mode. Once the crack was established, a linear correlation was found between the measured current and crack length with a slope of -10 -11 A/mm and -10 -8 A/mm for nanocomposites, with 0.3 wt% and 1.0 wt% of SWCNT, respectively. Contact between the asperities formed on the crack surfaces in the nanocomposite film while the crack was closed was found to be an important limiting factor causing a large variation in measured currents during each fatigue cycle. In summary, the nanocomposite thin film sensor developed in this work offers continuous crack growth monitoring. The sensor is also suitable for visual inspection of the host structure due to the transparency of the developed nanocomposite film. |
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Date de publication | 2011 |
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Maison d’édition | DEStech publications |
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Dans | |
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Langue | anglais |
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Publications évaluées par des pairs | Oui |
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Numéro NPARC | 21271262 |
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Exporter la notice | Exporter en format RIS |
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Signaler une correction | Signaler une correction (s'ouvre dans un nouvel onglet) |
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Identificateur de l’enregistrement | 251a985a-6de8-4ebc-870c-c7f612d6ba78 |
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Enregistrement créé | 2014-03-24 |
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Enregistrement modifié | 2024-08-07 |
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