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Flame retardant and toughening mechanisms of core-shell microspheres

机译:核-壳微球的阻燃增韧机理

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摘要

Epoxy (EP) composites containing polystyrene-ammonium polyphosphate core-shell microspheres (CSPPS-APP) were developed for flame retardant and toughening effects. The flame retardancy and thermal degradation behavior of the EP composites was investigated by limited oxygen index (LOI), vertical burning test (UL-94), cone calorimeter (CONE) and thermogravimetric analysis (TGA). Scanning electron microscopy with energy-dispersive spectroscopy capability (SEM-EDS) was used to characterize the morphology and elements of the residual chars. A possible flame retardant mechanism of the CSPPS-APP in EP matrix was proposed based on the CONE, TGA and SEM-EDS results. The influence of CSPPS-APP content on the glass transition temperature (T-g), storage modulus, Young's modulus, tensile strength and fracture toughness (K-IC) of the material was also investigated. The results show that the CSPPS-APP microspheres lead to significant flame retardant and char formation effects on the EP. The Young's modulus and fracture toughness of the EP/CSPPS-APP composites increase with increasing CSPPS-APP content. The fracture toughness of the composite containing 15% CSPPS-APP increased by approximately 59% compared to that of the neat matrix. In addition, the critical strain energy release rate (G(IC)) of the epoxy increased from 159 to 409 J m(-2) with the addition of 15% CSPPS-APP. The SEM images of the fracture surface indicate that the enhanced toughness of EP/CSPPS-APP composites can be attributed to the debonding of the core-shell microspheres and the subsequent plastic void growth of the matrix, as well as the crack deflection effect of CSPPS-APP.
机译:含有聚苯乙烯-聚磷酸铵核-壳微球(CSPPS-APP)的环氧树脂(EP)复合材料具有阻燃和增韧作用。通过有限氧指数(LOI),垂直燃烧试验(UL-94),锥形量热仪(CONE)和热重分析(TGA)研究了EP复合材料的阻燃性和热降解行为。具有能量色散光谱功能的扫描电子显微镜(SEM-EDS)用于表征残留炭的形态和元素。基于CONE,TGA和SEM-EDS结果,提出了EP基体中CSPPS-APP可能的阻燃机理。还研究了CSPPS-APP含量对材料的玻璃化转变温度(T-g),储能模量,杨氏模量,拉伸强度和断裂韧性(K-IC)的影响。结果表明,CSPPS-APP微球对EP产生显着的阻燃和炭化作用。 EP / CSPPS-APP复合材料的杨氏模量和断裂韧性随CSPPS-APP含量的增加而增加。与纯基质相比,含15%CSPPS-APP的复合材料的断裂韧性提高了约59%。此外,通过添加15%CSPPS-APP,环氧树脂的临界应变能释放速率(G(IC))从159 J m(-2)增加到409 J m(-2)。断裂表面的SEM图像表明,EP / CSPPS-APP复合材料的增强韧性可归因于核-壳微球的脱粘和随后基体的塑性空洞生长,以及CSPPS的裂纹偏转效应-APP。

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