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首页> 外文期刊>High performance polymers >Addition-curable phenolic resin with arylacetylene groups: preparation, processing capability, thermal properties, and evaluation as matrix of composites
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Addition-curable phenolic resin with arylacetylene groups: preparation, processing capability, thermal properties, and evaluation as matrix of composites

机译:具有芳基乙炔基的可加成固化的酚醛树脂:制备,加工性能,热性能和作为复合材料基质的评估

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摘要

Ethynyl phenyl azo novolac resin with substitution extent of 100% (EPAN100) was synthesized by a two-step procedure, including coupling reaction between salicyl alcohol and diazonium sulfate of 3-ethynyl aniline to get 4-(3-ethynylphenyl) azo salicyl alcohol (EPAS), and its polycondensation reaction. EPAS and EPAN 100 were characterized by Fourier transform infrared spectroscopy (FT-IR), proton nuclear magnetic resonance spectroscopy ( H-NMR), and gel permeation chromatography. The melt viscosity characteristics of the resin were investigated by TA AR2000 rheometer. The cure characteristics and cure schedule of EPAN 100 were determined by differential scanning calorimetry (DSC) analysis and the FT-IR technique. The DSC curve of EPAN 100 showed a cure exotherm between 120 and 280 °C with an enthalpy of 4l6J g~(-1), which was far lower than that of 1079 J g~(-1) for polyarylacetylene resin (PAA). Dynamic mechanical analysis and thermal gravimetric analysis were used to investigate the thermal stability of EPAN 100. The results showed that cured EPAN 100 resin possessed significantly improved thermal stability and char-yielding property relative to novolac-type phenolic resin. The onset decrease temperature of storage modulus (T_(onset)) and glass transition temperature (T_g) were 350 and 400 °C, respectively. The 5% weight loss temperature (T_d~5) was approximately 420 °C, and the char yield at 900 °C in nitrogen was approximately 79%. In comparison with PAA-matrix composites, the composites of EPAN 100 resin presented much higher mechanical strength both at room and high temperature. Scanning electron microscope analysis showed that silica cloth/EPAN 100 resin possessed better interaction between resin and fibers.
机译:通过两步反应合成了取代度为100%的乙炔基苯基偶氮酚醛清漆树脂(EPAN100),包括水杨醇与3-乙炔基苯胺的硫酸重氮偶合反应得到4-(3-乙炔基苯基)偶氮水杨醇( EPAS),及其缩聚反应。 EPAS和EPAN 100通过傅里叶变换红外光谱(FT-IR),质子核磁共振光谱(H-NMR)和凝胶渗透色谱进行了表征。通过TA AR2000流变仪研究树脂的熔体粘度特性。 EPAN 100的固化特性和固化方案通过差示扫描量热(DSC)分析和FT-IR技术确定。 EPAN 100的DSC曲线显示在120至280°C之间有固化放热,焓为4l6J g〜(-1),远低于聚芳基乙炔树脂(PAA)的1079 J g〜(-1)。用动态力学分析和热重分析法研究了EPAN 100的热稳定性。结果表明,与酚醛清漆型酚醛树脂相比,固化的EPAN 100树脂具有显着改善的热稳定性和炭化性能。储能模量的起始降低温度(T_(起始))和玻璃化转变温度(T_g)分别为350℃和400℃。 5%失重温度(T_d〜5)约为420℃,并且在氮气中900℃下的焦炭产率约为79%。与PAA基质复合材料相比,EPAN 100树脂复合材料在室温和高温下均具有更高的机械强度。扫描电子显微镜分析表明,硅布/ EPAN 100树脂在树脂和纤维之间具有更好的相互作用。

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