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Core-shell particles designed for toughening the epoxy resins. II. Core-shell-particle-toughened epoxy resins

机译:核壳颗粒设计用于增韧环氧树脂。二。核壳颗粒增韧环氧树脂

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The diglycidyl ether of bisphenol A-m-phenylene diamine (DGEBA-M-PDA) epoxy resin was toughened with various sizes and amounts of reactive core-shell particles (CSP) with butyl acrylate (BA) as a core and methyl methacrylate (MMA) copolymerized with various concentration of glycidyl methacrylate (GMA) as a shell. Ethylene glycol dimethacrylate (EGDMA) was used to crosslink either core or shell. Among the variables of incorporated CSP indicated above, the optimal design was to obtain the maximum plastic flow of epoxy matrix surrounding the cavitated CSP during the fracture test. It could be achieved by maximizing the content of GMA in a shell-crosslinked CSP, the particle size, and the content of CSP in the epoxy resin without causing the large-scale coagulations. The incorporation of reactive CSP could also accelerate the curing reaction of epoxy resins. Besides, it was able to increase the glass transition temperature of epoxy resins if the particle size less than or equal to 0.25 mu m and the dispersion was globally uniform. (C) 1998 John Wiley & Sons, Inc. [References: 14]
机译:以丙烯酸丁酯(BA)为核和甲基丙烯酸甲酯(MMA)共聚的各种尺寸和数量的反应性核-壳颗粒(CSP),以双酚Am-苯二胺(DGEBA-M-PDA)环氧树脂的二缩水甘油醚增韧以各种浓度的甲基丙烯酸缩水甘油酯(GMA)作为外壳。乙二醇二甲基丙烯酸酯(EGDMA)用于交联核或壳。在上面指出的并入CSP的变量中,最佳设计是在断裂试验期间获得围绕空化CSP的环氧基质的最大塑性流量。这可以通过使壳交联的CSP中的GMA含量,粒径和环氧树脂中CSP的含量最大化而不会引起大规模的凝结来实现。反应性CSP的掺入也可以促进环氧树脂的固化反应。此外,如果粒径小于或等于0.25μm并且分散体整体均匀,则能够提高环氧树脂的玻璃化转变温度。 (C)1998 John Wiley&Sons,Inc. [参考:14]

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