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Novel phosphorus-modified polysulfone as a combined flame retardant and toughness modifier for epoxy resins

机译:新型磷改性聚砜作为环氧树脂的阻燃剂和韧性改性剂的组合

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A novel phosphorus-modified polysulfone (P-PSu) was employed as a combined toughness modifier and a source of flame retardancy for a DGEBA/DDS thermosetting system. In comparison to the results of a commercially available polysulfone (PSu), commonly used as a toughness modifier, the chemorheological changes during curing measured by means of temperature-modulated DSC revealed an earlier occurrence of mobility restrictions in the P-PSu-modified epoxy. A higher viscosity and secondary epoxy-modifier reactions induced a sooner vitrification of the reacting mixture; effects that effectively prevented any phase separation and morphology development in the resulting material during cure. Thus, only about a 20% increase in fracture toughness was observed in the epoxy modified with 20 wt.% of P-PSu, cured under standard conditions at 180 degrees C for 2 h. Blends of the phosphorus-modified and the standard polysulfone (PSu) were also prepared in various mixing ratios and were used to modify the same thermosetting system. Again, no evidence for phase separation of the P-PSu was found in the epoxy modified with the P-PSu/PSu blends cured under the selected experimental conditions. The particular microstructures formed upon curing these novel materials are attributed to a separation of PSu from a miscible P-PSu-epoxy mixture. Nevertheless, the blends of P-PSu/PSu were found to be effective toughness/flame retardancy enhancers owing to the simultaneous microstructure development and polymer interpenetration. (c) 2006 Elsevier Ltd. All rights reserved.
机译:一种新型的磷改性聚砜(P-PSu)被用作DGEBA / DDS热固性体系的组合韧性改进剂和阻燃源。与通常用作韧性改进剂的市售聚砜(PSu)的结果相比,通过温度调节DSC测得的固化过程中的化学流变变化显示出P-PSu改性环氧树脂中迁移率限制的出现较早。较高的粘度和辅助的环氧改性剂反应引起反应混合物的玻璃化较早;该作用有效地防止了固化过程中所得材料的任何相分离和形态发展。因此,在标准条件下于180℃固化2小时的20%(重量)的P-PSu改性的环氧树脂中,仅观察到断裂韧性提高了约20%。还以各种混合比例制备了磷改性和标准聚砜(PSu)的共混物,并用于改性同一热固性体系。同样,在选择的实验条件下固化的P-PSu / PSu共混物改性的环氧树脂中,没有发现P-PSu相分离的证据。固化这些新型材料后形成的特定微结构归因于PSu与可混溶的P-PSu-环氧树脂混合物的分离。然而,由于同时发生的微结构发展和聚合物互穿作用,发现P-PSu / PSu的混合物是有效的韧性/阻燃增强剂。 (c)2006 Elsevier Ltd.保留所有权利。

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