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AbstractAbstract
[en] This thesis is part of a research concerning the behaviour of polymers in space environment. It has two goals: to study the ageing of PolyEtherEtherKetone (PEEK) under electronic irradiation and to optimise its electrical properties in order to limit surface charge phenomena. For this purpose, PEEK / Short Carbon Fibre composites have been developed. The electrical percolation threshold of the fibres was determined at a volume content of 9%. As space applications of PEEK require an electrical insulating behaviour, a filler content of 3%vol. was selected. The presence of the fibres improves electronic conductivity at room temperature, even below the electrical percolation threshold. Samples were then subjected to a high-energy electron beam to simulate their ageing in space environment. Analysis of the irradiated samples revealed two simultaneous ageing phenomena: cross-linking of the amorphous phase and amorphization of the crystalline phase. Irradiation near the glass transition (165 deg. C) leads to a higher cross-linking density due to a higher recombination rate of radicals. In composites, fibres limit amorphization and stabilise the mechanical behaviour evolution. With regard to the electrical properties, ageing induces a decrease in ionic conductivity above Tg. In composites, this decrease is amplified. At room temperature, irradiations at 25 deg. C and at 165 deg. C lead to opposite evolutions in electronic transport which are associated with competition between cross-linking and amorphization. In composites, fibres stabilise the evolution of potential relaxation and always allow a faster flow of electrons. (author)
[fr]
Cette these s'inscrit dans une thematique de recherche liee au comportement des polymeres en environnement spatial. Elle presente deux objectifs: etudier le vieillissement du PolyEtherEtherKetone (PEEK) sous irradiation electronique et optimiser ses proprietes electriques afin de limiter les phenomenes de charge de surface. Pour cela, des composites PEEK / Fibres Courtes de Carbone ont ete elabores. Le seuil de percolation electrique des fibres a ete determine a un taux volumique de 9%. Les applications spatiales du PEEK necessitant un comportement isolant electrique, le taux de charges de 3%vol. a ete selectionne. La presence des fibres permet d'ameliorer la conductivite electronique a temperature ambiante, meme en-dessous du seuil de percolation electrique. Lesmateriaux ont alors ete soumis a un flux d'electrons de haute energie afin de simuler leur vieillissement en environnement spatial. L'analyse des echantillons irradies a mis en evidence deux phenomenes de vieillissement simultanes: une reticulation de la phase amorphe et une amorphisation de la phase cristalline. L'irradiation au voisinage de la transition vitreuse (165 deg. C) conduit a une densite de reticulation plus importante due a un taux de recombinaison des radicaux plus eleve. Dans les composites, les fibres limitent l'amorphisation et stabilisent le comportement mecanique. Vis-a-vis des proprietes electriques, le vieillissement induit une diminution de la conductivite ionique au-dessus de Tg. Dans les composites, cette diminution est amplifiee. A temperature ambiante, l'irradiation a 25 deg. C ou a 165 deg. C conduit a des evolutions opposees du transport electronique associees a la competition entre reticulation et amorphisation. Dans les composites, les fibres stabilisent l'evolution de la relaxation de potentiel et permettent toujours un ecoulement plus rapide des electrons. (auteur)Original Title
Vieillissement sous irradiation electronique du PolyEtherEtherKetone: optimisation des proprietes electriques pour applications en environnement spatial
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Source
29 Sep 2020; 182 p; 231 refs.; Available from the INIS Liaison Officer for France, see the INIS website for current contact and E-mail addresses; These de Doctorat de L'Universite de Toulouse
Record Type
Miscellaneous
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Thesis/Dissertation
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AGING, CALORIMETRY, CARBON FIBERS, CHARGE TRANSPORT, CHEMICAL REACTION KINETICS, COMPOSITE MATERIALS, DIFFUSION, ELECTRIC CHARGES, ELECTROMAGNETIC RADIATION, ELECTRON BEAMS, FICK LAWS, IONIC CONDUCTIVITY, KETONES, MECHANICAL PROPERTIES, PHYSICAL RADIATION EFFECTS, RELAXATION, THERMAL GRAVIMETRIC ANALYSIS
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