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Effects of post-curing on the thermo-mechanical behavior and the chemical structure of highly filled phenolic molding compounds

机译:后固化对高填充酚醛模塑料热力学行为和化学结构的影响

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摘要

Due to their excellent thermomechanical properties, as well as their good media resistance, phenolic molding compounds are outstanding materials for high temperature applications, such as components for the engine compartment. An additional post-curing process, after injection molding, shifts the glass transition temperature towards high temperatures up to 300 degrees C. The objective of this work is to analyze the influence of the post-curing process on the chemical structure of the material. This structure is responsible for the mechanical and thermal properties of the material. Therefore tensile test bars were molded with a highly filled phenolic molding compound and different post-curing cycles under different atmospheres were done. The tensile properties and the glass transition temperatures (TMA) were measured. To get detailed information of the chemical structure ATR-FTIR and NMR analyses were done. The mechanical properties decreased up to 25 % with higher post-curing temperature (under air atmosphere) although the glass transition temperatures (TMA) and the grades of curing (NMR) increased. Furthermore, in the ATR-FTIR measurements, oxidation products were detected on the surface of the sample which were post-cured under air atmosphere. In comparison, no oxidation products could be detected on the samples post-cured under nitrogen atmosphere and the mechanical properties just decreased about 4 %. Oxidation processes could be provided by post-curing under nitrogen atmosphere which led to higher mechanical properties, in connection with a high grade of cure and a higher glass transition temperature in comparison with post-curing under air atmosphere.
机译:由于其出色的热机械性能以及良好的耐介质性,酚醛模塑料是用于高温应用(例如发动机舱部件)的出色材料。注射成型后,额外的后固化过程会将玻璃化转变温度移至最高300摄氏度的高温。这项工作的目的是分析后固化过程对材料化学结构的影响。这种结构负责材料的机械和热性能。因此,将拉伸测试棒用高度填充的酚醛模塑料模制,并在不同的气氛下进行不同的后固化周期。测量了拉伸性能和玻璃化转变温度(TMA)。为了获得化学结构的详细信息,进行了ATR-FTIR和NMR分析。尽管玻璃化转变温度(TMA)和固化等级(NMR)有所提高,但随着较高的后固化温度(在大气中),机械性能下降了25%。此外,在ATR-FTIR测量中,在空气中后固化的样品表面检测到氧化产物。相比之下,在氮气氛下后固化的样品上未检测到氧化产物,机械性能仅降低了约4%。与在空气气氛下进行后固化相比,可以通过在氮气气氛下进行后固化来提供氧化工艺,这导致更高的机械性能,同时具有更高的固化度和更高的玻璃化转变温度。

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