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◆ Scientific Reports2026-04-17· Materials science

Dynamic mechanical thermal analysis (DMTA) of the hybrid epoxy/carbon-fibers nanocomposites for satellite structures

Mohammed Gamil, W. M. Farouk, Ahmed Abu-Oqail, Mohamed Abu-Okail, Ghaith Al-Hawajreh, Waleed El-Sallamy, Abou Bakr Elshalakany

原始摘要(英文原文)· Original abstract
Abstract The current paper investigates the influence of the reinforced nanocomposites, including TiO 2 , ZrO 2 , SiO 2 , and graphite, on dynamic mechanical and thermal behaviour of epoxy/carbon fiber nanocomposites fabricated by hand layup technique. To investigate the effect of the reinforced nanocomposites on the DMTA, several weight percentages (1.5 wt%, 3 wt%) were taken into consideration. The microstructural features of fabricated specimens were examined through an optical microscope. High-resolution SEM imaging, elemental mapping analysis, and fractography were conducted to analyze fiber distribution, interfacial bonding, and failure mechanisms. Superior damping factor and a higher transition temperature were observed for epoxy/carbon-reinforced fiber with 3 wt% TiO 2 . In comparison to the 1.5 wt% ZrO 2 nanocomposite, the 3 wt% ZrO 2 nanocomposite shows improved mechanical properties overall, including lower tensile compliance, a slightly higher T g , and a greater complex viscosity. This implies that better stiffness and thermal stability are the outcomes of increasing ZrO 2 concentration. Adding 3 wt% SiO 2 enhances the stiffness of material’s and stability of thermal up to T g . Generally, an elevate in reinforcement content (from 1.5 wt% to 3 wt%) results in a higher damping factor. At higher temperatures over 80 °C nearly, the tensile compliance improved and increased by the addition of 3 wt% SiO 2 , 1.5 wt% graphite, 1.5 wt% TiO 2 , 3 wt% TiO 2 , 3 wt% ZrO 2 , and 1.5 wt% ZrO 2 , consequently. ZrO 2 (3 wt%) shows better results compared to TiO 2 and SiO 2 , highlighting its effectiveness at higher concentrations. The optical and SEM micrographs show minimal agglomeration and good nanoparticle distribution, confirming successful composite preparation.
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Dynamic mechanical thermal analysis (DMTA) of the hybrid epoxy/carbon-fibers nanocomposites for satellite structures — 科研速览 Science Skim