首页> 外文期刊>Journal of Thermoplastic Composite Materials >The evolution of morphology, crystallization and static and dynamic mechanical properties of long glass-fibre-reinforced polypropylene composites under thermo-oxidative ageing
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The evolution of morphology, crystallization and static and dynamic mechanical properties of long glass-fibre-reinforced polypropylene composites under thermo-oxidative ageing

机译:热氧化老化下长玻璃纤维增强聚丙烯复合材料的形态,结晶和静态和动态力学性能的演变

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摘要

In this work, the static and dynamic mechanical properties, crystallization behaviours, and morphology of long glass-fibre-reinforced polypropylene (PP) composites with thermo-oxidative ageing time from 0 day to 50 days at 120 degrees C were investigated and discussed. The static mechanical properties showed a global decrease in tensile, bending and impact strengths with increasing ageing time. From the results obtained by scanning electronic microscopic observations, interface debonding clearly occurred between the glass fibre and PP matrix in the aged samples. The crystallinity (X-c) of the composites was analyzed by differential scanning calorimetry; annealing process played the leading role in the early period of ageing, while as ageing progressed, the degradation of PP matrix dominated the ageing process and X-c decreased. The dynamic mechanical analysis results indicated that the storage modulus and glass transition temperature of the composites also decreased with prolonging ageing time. Then, the apparent activation energy (E) of glass transition was calculated by the Arrhenius equation with different scanning frequencies. A higher value of E was obtained for the samples in the later ageing period, which means a higher energy barrier for glass transition.
机译:在这项工作中,研究了在120℃下从0日至50天的热氧化老化时间的长玻璃纤维增​​强聚丙烯(PP)复合材料的静态和动态机械性能,结晶行为和形态学。静态机械性能显示出抗拉,弯曲和冲击强度的全局降低,随着老化时间的增加。从通过扫描电子显微镜观察获得的结果,在老化样品中的玻璃纤维和PP基质之间清楚地发生界面剥离。通过差示扫描量热法分析复合材料的结晶度(X-C);退火过程在衰老的早期发挥了主导作用,而随着老化进行,PP基质的降解主导了衰老过程,X-C降低。动态力学分析结果表明复合材料的储存模量和玻璃化转变温度随着老化时间延长也降低。然后,通过具有不同扫描频率的Arhenius方程计算玻璃化转变的表观激活能量(e)。在后续衰老期间的样品获得较高的E值,这意味着玻璃化转变的更高能量屏障。

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