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Littérature scientifique sur le sujet « Thermal and fire resistance of aeronautic resins »
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Articles de revues sur le sujet "Thermal and fire resistance of aeronautic resins"
Raimondo, M., S. Russo, L. Guadagno, P. Longo, S. Chirico, A. Mariconda, L. Bonnaud, O. Murariu et Ph Dubois. « Effect of incorporation of POSS compounds and phosphorous hardeners on thermal and fire resistance of nanofilled aeronautic resins ». RSC Advances 5, no 15 (2015) : 10974–86. http://dx.doi.org/10.1039/c4ra11537f.
Texte intégralBarra, Giuseppina, Liberata Guadagno, Luigi Vertuccio, Bartolome Simonet, Bricio Santos, Mauro Zarrelli, Maurizio Arena et Massimo Viscardi. « Different Methods of Dispersing Carbon Nanotubes in Epoxy Resin and Initial Evaluation of the Obtained Nanocomposite as a Matrix of Carbon Fiber Reinforced Laminate in Terms of Vibroacoustic Performance and Flammability ». Materials 12, no 18 (16 septembre 2019) : 2998. http://dx.doi.org/10.3390/ma12182998.
Texte intégralFAINLEIB, A. M. « BIO-BASED CYANATE ESTER RESINS AND THERMOSTABLE POLYMER NETWORKS DERIVED THEREOF. MINI REVIEW ». Polymer journal 44, no 2 (20 juin 2022) : 93–100. http://dx.doi.org/10.15407/polymerj.44.02.093.
Texte intégralGrange, Nathan, Pietro Tadini, Khaled Chetehouna, Nicolas Gascoin, Guillaume Bouchez, Samuel Senave et Isabelle Reynaud. « Experimental determination of fire degradation kinetic for an aeronautical polymer composite material ». International Journal of Structural Integrity 9, no 1 (5 février 2018) : 76–92. http://dx.doi.org/10.1108/ijsi-03-2017-0021.
Texte intégralChtourou, Halim, Abdelatif Atarsia et Bo Fisa. « Prediction of Thermal and Fire Resistance of Phenolic Resins by Dynamic TG Analysis ». Journal of Reinforced Plastics and Composites 18, no 4 (mars 1999) : 339–45. http://dx.doi.org/10.1177/073168449901800404.
Texte intégralDe Aloysio, Giulia, Mattia Morganti, Luca Laghi, Matteo Scafè, Enrico Leoni, Claudio Mingazzini et Stefano Bassi. « Characterization in expected working environments of recyclable fire-resistant materials ». MATEC Web of Conferences 349 (2021) : 01009. http://dx.doi.org/10.1051/matecconf/202134901009.
Texte intégralZielecka, Maria, Anna Rabajczyk, Krzysztof Cygańczuk, Łukasz Pastuszka et Leszek Jurecki. « Silicone Resin-Based Intumescent Paints ». Materials 13, no 21 (27 octobre 2020) : 4785. http://dx.doi.org/10.3390/ma13214785.
Texte intégralNguyen, Tuan Anh, et Thi Thu Trang Bui. « Study the Effects of Carbon Nanotubes and Graphene Oxide Combinations on the Mechanical Properties and Flame Retardance of Epoxy Nanocomposites ». Journal of Nanomaterials 2021 (27 décembre 2021) : 1–9. http://dx.doi.org/10.1155/2021/1437929.
Texte intégralDowbysz, Adriana, Mariola Samsonowicz et Bożena Kukfisz. « Recent Advances in Bio-Based Additive Flame Retardants for Thermosetting Resins ». International Journal of Environmental Research and Public Health 19, no 8 (15 avril 2022) : 4828. http://dx.doi.org/10.3390/ijerph19084828.
Texte intégralSayin, Baris, et Erdem Damcı. « A Numerical Evaluation of Insulated CFRP-Strengthened RC Beams Exposed to Fire ». Advanced Materials Research 742 (août 2013) : 62–69. http://dx.doi.org/10.4028/www.scientific.net/amr.742.62.
Texte intégralThèses sur le sujet "Thermal and fire resistance of aeronautic resins"
Raimondo, Marialuigia. « Improving the aircraft safety by advanced structures and protecting nanofillers ». Doctoral thesis, Universita degli studi di Salerno, 2014. http://hdl.handle.net/10556/1480.
Texte intégralInspection and Maintenance are important aspects when considering the availability of aircraft for revenue flights. Modern airframe design is exploiting new exciting developments in materials and structures to construct ever more efficient air vehicle able to enable efficient maintenance. The improvement in the aircraft safety by advanced structures and protecting nanofillers is a revolutionary approach that should lead to the creation of novel generation of multifunctional aircraft materials with strongly desired properties and design flexibilities. In recent years, the development of new nanostructured materials has enabled an evolving shift from single purpose materials to multifunctional systems that can provide greater value than the base materials alone; these materials possess attributes beyond the basic strength and stiffness that typically drive the science and engineering of the material for structural systems. Structural materials can be designed to have integrated electrical, electromagnetic, flame resistance, and possibly other functionalities that work in synergy to provide advantages that reach beyond that of the sum of the individual capabilities. Materials of this kind have tremendous potential to impact future structural performance by reducing size, weight, cost, power consumption and complexity while improving efficiency, safety and versatility. It is a well-known fact that, actually, also a very advanced design of an aircraft has to take required inspection intervals into account. An aircraft with inherent protective abilities could help to significantly extend the inspection intervals, thereby increasing aircraft availability. The challenge in this research is to develop and apply a multifunctional composite for structural applications. The aim of this project is the formulation, preparation and characterization of structural thermosetting composites containing dispersed protective nanofillers. This project specifically targets composites tailored for multifunctional applications such as lightning strike protection, and flame resistance. These composites were designed to enable their application on next generation aircrafts. With regard to the objectives of this PhD project the multifunctional composite systems were developed with the aim of overcoming the following drawbacks of the composite materials: • reduced electrical conductivity; • poor flame resistance. The thermosetting material was projected considering compatibility criteria so that to integrate different functions into a material that is capable of bearing mechanical loads and serves as a structural material element. [edited by author]
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Actes de conférences sur le sujet "Thermal and fire resistance of aeronautic resins"
Živković, Andreja, Nataša Tomić, Marija Vuksanović et Aleksandar Marinković. « Synthesis and characterization of epoxy resin coating with improved fire resistance by the addition of modified tannic acid ». Dans 8th International Conference on Renewable Electrical Power Sources. SMEITS, 2020. http://dx.doi.org/10.24094/mkoiee.020.8.1.35.
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