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Thermal Stability of Allyl-Functional Phthalonitriles-Containing Benzoxazine/Bismaleimide Copolymers and Their Improved Mechanical Properties

机译:含烯丙基官能的邻苯二甲腈/苯甲酰亚胺酰亚胺共聚物的热稳定性及其改善的机械性能

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摘要

Copolymerization is the typical method to obtain the high-performance resin composites, due to its universality and regulation performance. It can be employed among various resin matrices with active groups to obtain the desired structures, and subsequently, the outstanding properties. In this work, the copolymerization between the allyl-functional phthalonitrile-containing benzoxazine resin (DABA-Ph) and 4,4′-bis(Maleimidodiphenyl)methane (BMI) were monitored. The interactions among the active groups including allyl moieties, maleimide, benzoxazine rings and nitrile groups were investigated. Differential scanning calorimetry (DSC) and dynamic rheological analysis (DRA) were used to study the curing behaviors and the processing properties. The possible curing processes were proposed and confirmed by Fourier transform infrared spectroscopy (FTIR). Then, glass fiber-reinforced DABA-Ph/BMI composites were designed, and their thermal-mechanical properties were studied. Results indicated that all the composites exhibited outstanding flexural strength, flexural modulus, and high glass-transition temperatures (Tg > 450 °C). The thermal stability of the composites was studied by thermogravimetry (TGA) and evaluated by the integral program decomposition temperature (IPDT). it is believed that the excellent thermal mechanical properties and outstanding Tg as well as good thermal stability would enable the reinforced copolymer-based laminates to be applied in wider fields.
机译:由于其通用性和调节性能,共聚是获得高性能树脂复合材料的典型方法。可以在具有活性基团的各种树脂基质中使用它,以获得所需的结构,进而获得优异的性能。在这项工作中,监测含烯丙基官能的邻苯二甲腈的苯并恶嗪树脂(DABA-Ph)与4,4'-双(马来酰亚胺二苯基)甲烷(BMI)之间的共聚。研究了烯丙基,马来酰亚胺,苯并恶嗪环和腈基等活性基团之间的相互作用。差示扫描量热法(DSC)和动态流变分析(DRA)用于研究固化行为和加工性能。提出了可能的固化工艺,并通过傅立叶变换红外光谱(FTIR)进行了确认。然后,设计了玻璃纤维增​​强的DABA-Ph / BMI复合材料,并研究了其热机械性能。结果表明,所有复合材料均具有出色的抗弯强度,弯曲模量和较高的玻璃化转变温度(Tg> 450°C)。通过热重分析(TGA)研究了复合材料的热稳定性,并通过积分程序分解温度(IPDT)对其进行了评估。据信,优异的热机械性能和优异的Tg以及良好的热稳定性将使增强的基于共聚物的层压材料能够在更广阔的领域中应用。

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