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High Temperature Epoxy Foam: Optimization of Process Parameters

机译:高温环氧泡沫:工艺参数的优化

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摘要

For many years, reduction of fuel consumption has been a major aim in terms of both costs and environmental concerns. One option is to reduce the weight of fuel consumers. For this purpose, the use of a lightweight material based on rigid foams is a relevant choice. This paper deals with a new high temperature epoxy expanded material as substitution of phenolic resin, classified as potentially mutagenic by European directive Reach. The optimization of thermoset foam depends on two major parameters, the reticulation process and the expansion of the foaming agent. Controlling these two phenomena can lead to a fully expanded and cured material. The rheological behavior of epoxy resin is studied and gel time is determined at various temperatures. The expansion of foaming agent is investigated by thermomechanical analysis. Results are correlated and compared with samples foamed in the same temperature conditions. The ideal foaming/gelation temperature is then determined. The second part of this research concerns the optimization of curing cycle of a high temperature trifunctional epoxy resin. A two-step curing cycle was defined by considering the influence of different curing schedules on the glass transition temperature of the material. The final foamed material has a glass transition temperature of 270 °C.
机译:多年来,就成本和环境问题而言,减少燃料消耗一直是主要目标。一种选择是减轻燃料消耗者的重量。为此,使用基于硬质泡沫的轻质材料是一个合适的选择。本文研究了一种新型的高温环氧膨胀材料,它是酚醛树脂的替代品,被欧洲指令Reach分类为潜在诱变剂。热固性泡沫的优化取决于两个主要参数,即成网过程和发泡剂的膨胀。控制这两种现象可导致材料完全膨胀和固化。研究了环氧树脂的流变行为,并确定了在不同温度下的胶凝时间。通过热力学分析研究发泡剂的膨胀。将结果关联起来,并与在相同温度条件下发泡的样品进行比较。然后确定理想的发泡/胶凝温度。本研究的第二部分涉及高温三官能环氧树脂的固化周期的优化。通过考虑不同固化时间表对材料的玻璃化转变温度的影响,定义了一个两步固化周期。最终的泡沫材料的玻璃化转变温度为270°C。

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