首页> 外文期刊>Journal of Applied Polymer Science >Influence of Skydrol immersion at elevated temperatures on the thermo-mechanical properties of a high-T-g anhydride epoxy resin toughened with a hydroxy-terminated polyester
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Influence of Skydrol immersion at elevated temperatures on the thermo-mechanical properties of a high-T-g anhydride epoxy resin toughened with a hydroxy-terminated polyester

机译:高温下Skydrol浸泡对羟基封端聚酯增韧高T-g酸酐环氧树脂热力学性能的影响

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摘要

Currently, the application of composites in aerospace parts exposed to higher temperatures and in aggressive media is still severely limited. To replace metal alloys, alternative resins systems with suitable long-term heat resistance are needed. In this study, the effect of the aviation hydraulic fluid Skydrol on the thermal and mechanical properties of a high-T-g, anhydride-cured epoxy resin in the unmodified and toughened state at elevated temperature is investigated. An aliphatic polyester diol was selected as an intrinsic toughener and its impact on the thermal, mechanical, and aging properties was determined. Experimental characterization of the aging effects is carried out with dynamic-mechanical characterization, infrared spectroscopy, and electron dispersion x-ray spectroscopy. In addition, the fracture toughness and the fatigue crack propagation behavior are determined. Initially, the toughened system shows an improved fracture toughness. Since oxidation is blocked by the Skydrol fluid only thermal degradation takes place as determined by the decrease in glass transition temperature T-g and network density. The thermal degradation leads to a tougher behavior, which is observed in both systems in static and dynamic mode with toughness decreasing with aging time again.
机译:目前,复合材料在暴露于较高温度的航空航天部件和腐蚀性介质中的应用仍然受到严重限制。为了取代金属合金,需要具有适当长期耐热性的替代树脂体系。本研究研究了航空液压油Skydrol对高温下未改性和增韧状态下高T-g酸酐固化环氧树脂的热性能和力学性能的影响。选取脂肪族聚酯二醇作为本征增韧剂,测定其对热性能、机械性能和老化性能的影响。通过动态力学表征、红外光谱和电子色散X射线光谱对老化效应进行了实验表征。此外,还测定了断裂韧性和疲劳裂纹扩展行为。最初,增韧系统显示出改进的断裂韧性。由于氧化被 Skydrol 流体阻挡,因此仅发生热降解,这取决于玻璃化转变温度 T-g 和网络密度的降低。热降解导致更坚韧的行为,在静态和动态模式下的两种系统中都可以观察到这种情况,韧性再次随着老化时间而降低。

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