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Effect of electron beam radiation dose on the foam formation in pre-ceramic polymer
Authors:Rosa Maria da Rocha  Esperidiana AB Moura  José Carlos Bressiani  Ana Helena A Bressiani
Institution:1. Comando-Geral de Tecnologia Aeroespacial, CTA-IAE-Divisão de Materiais, Pça Marechal do Ar Eduardo Gomes, 50-São José dos Campos, SP-12228-904, Brazil;2. Instituto de Pesquisas Energéticas e Nucleares, IPEN/CNEN-SP, Prof. Lineu Prestes, 2242, Cidade Universitária, São Paulo, SP-05508-900, Brazil;1. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China;2. College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, Shanghai 201620, China;1. Department of Polymer Technology, Kamaraj College of Engineering and Technology, S.P.G.C. Nagar, K. Vellakulam, Tamil Nadu 625 701, India;2. Radiation Technology Development Section, Bhabha Atomic Research Centre, Mumbai 400085, India
Abstract:Methylsilicone resin as a polymer precursor for a SiOC ceramic material was cured and foamed by electron beam (EB) irradiation in air prior to the pyrolysis under an inert atmosphere. Methylsilicone foams were obtained without additional foaming agent when exposed to accelerated electrons with radiation doses up to 9 MGy and dose rate of 2.8 kGy/s. During irradiation the polymer was melted and simultaneously gaseous products were formed by the methyl group oxidation and by the poly-condensation crosslinking reactions. The formed gases could not escape from the molten polymer and began to aggregate into bubbles. The effect of the radiation dose on the polymer foam molecular structure, the gel fraction and the ceramic yield was analyzed. The results indicate that the maximum amount of crosslinking in methylsilicone, when EB radiation is used, occurred between 1.0 and 2.0 MGy radiation dose. Methylsilicone foams were pyrolysed in N2 atmosphere at temperatures of 1200 and 1500 °C, resulting in amorphous SiOC and partially crystalline ceramic foams, respectively. A porosity of ~84% was achieved in the pyrolyzed foams, with cell size ranging from 30 to 300 μm and density of about 0.31 g cm?3.
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