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Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications

In this paper, a 4-ethylphenol-para-phenylenediamine (4EP-pPDA) benzoxazine has been applied and cured on previously anodized AA2024-T3 substrates. The porous surface oxide layers obtained from sulfo-tartaric anodizing appeared to be highly impregnated by the benzoxazine resin, sealing the anodic fi...

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Autores principales: Renaud, Alexis, Paint, Yoann, Lanzutti, Alex, Bonnaud, Leïla, Fedrizzi, Lorenzo, Dubois, Philippe, Poorteman, Marc, Olivier, Marie-Georges
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064444/
https://www.ncbi.nlm.nih.gov/pubmed/35516372
http://dx.doi.org/10.1039/c9ra01970g
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author Renaud, Alexis
Paint, Yoann
Lanzutti, Alex
Bonnaud, Leïla
Fedrizzi, Lorenzo
Dubois, Philippe
Poorteman, Marc
Olivier, Marie-Georges
author_facet Renaud, Alexis
Paint, Yoann
Lanzutti, Alex
Bonnaud, Leïla
Fedrizzi, Lorenzo
Dubois, Philippe
Poorteman, Marc
Olivier, Marie-Georges
author_sort Renaud, Alexis
collection PubMed
description In this paper, a 4-ethylphenol-para-phenylenediamine (4EP-pPDA) benzoxazine has been applied and cured on previously anodized AA2024-T3 substrates. The porous surface oxide layers obtained from sulfo-tartaric anodizing appeared to be highly impregnated by the benzoxazine resin, sealing the anodic films. Through rheological, morphological and chemical characterization, the curing process has been identified to be the key step for the impregnation to occur, related to the low viscosity of the 4EP-pPDA benzoxazine attained during thermal curing. Moreover, the typical surface porosity of the anodic layer reappeared after curing, offering a good anchoring to possible top coats. Finally, high and enduring barrier properties of this hybrid organic–inorganic layer have been highlighted through Electrochemical Impedance Spectroscopy (EIS) and correlated with recent results obtained by Molecular Dynamics Simulations (MDS). These barrier properties appeared to be strongly influenced by the curing process parameters, as has been assessed using alternative curing cycles limiting their duration and lowering the curing temperature. Consequently, adapting the curing process enables the optimization of the barrier properties of the system while respecting the dependence of the mechanical properties of the AA2024-T3 substrate on thermal treatment at high temperatures.
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spelling pubmed-90644442022-05-04 Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications Renaud, Alexis Paint, Yoann Lanzutti, Alex Bonnaud, Leïla Fedrizzi, Lorenzo Dubois, Philippe Poorteman, Marc Olivier, Marie-Georges RSC Adv Chemistry In this paper, a 4-ethylphenol-para-phenylenediamine (4EP-pPDA) benzoxazine has been applied and cured on previously anodized AA2024-T3 substrates. The porous surface oxide layers obtained from sulfo-tartaric anodizing appeared to be highly impregnated by the benzoxazine resin, sealing the anodic films. Through rheological, morphological and chemical characterization, the curing process has been identified to be the key step for the impregnation to occur, related to the low viscosity of the 4EP-pPDA benzoxazine attained during thermal curing. Moreover, the typical surface porosity of the anodic layer reappeared after curing, offering a good anchoring to possible top coats. Finally, high and enduring barrier properties of this hybrid organic–inorganic layer have been highlighted through Electrochemical Impedance Spectroscopy (EIS) and correlated with recent results obtained by Molecular Dynamics Simulations (MDS). These barrier properties appeared to be strongly influenced by the curing process parameters, as has been assessed using alternative curing cycles limiting their duration and lowering the curing temperature. Consequently, adapting the curing process enables the optimization of the barrier properties of the system while respecting the dependence of the mechanical properties of the AA2024-T3 substrate on thermal treatment at high temperatures. The Royal Society of Chemistry 2019-06-06 /pmc/articles/PMC9064444/ /pubmed/35516372 http://dx.doi.org/10.1039/c9ra01970g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Renaud, Alexis
Paint, Yoann
Lanzutti, Alex
Bonnaud, Leïla
Fedrizzi, Lorenzo
Dubois, Philippe
Poorteman, Marc
Olivier, Marie-Georges
Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
title Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
title_full Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
title_fullStr Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
title_full_unstemmed Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
title_short Sealing porous anodic layers on AA2024-T3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
title_sort sealing porous anodic layers on aa2024-t3 with a low viscosity benzoxazine resin for corrosion protection in aeronautical applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064444/
https://www.ncbi.nlm.nih.gov/pubmed/35516372
http://dx.doi.org/10.1039/c9ra01970g
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