首页> 外文OA文献 >Different Methods of Dispersing Carbon Nanotubes in Epoxy Resin and Initial Evaluation of the Obtained Nanocomposite as a Matrix of Carbon Fiber Reinforced Laminate in Terms of Vibroacoustic Performance and Flammability
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Different Methods of Dispersing Carbon Nanotubes in Epoxy Resin and Initial Evaluation of the Obtained Nanocomposite as a Matrix of Carbon Fiber Reinforced Laminate in Terms of Vibroacoustic Performance and Flammability

机译:将碳纳米管分散在环氧树脂中的不同方法,并将所得纳米复合材料的初始评价为乙基语性能和易燃性碳纤维增强层压板基质

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摘要

Different industrial mixing methods and some of their combinations ((1) ultrasound; (2) mechanical stirring; (3) by roller machine; (4) by gears machine; and (5) ultrasound radiation + high stirring) were investigated for incorporating multi-walled carbon nanotubes (MWCNT) into a resin based on an aeronautical epoxy precursor cured with diaminodiphenylsulfone (DDS). The effect of different parameters, ultrasound intensity, number of cycles, type of blade, and gear speed on the nanofiller dispersion were analyzed. The inclusion of the nanofiller in the resin causes a drastic increase in the viscosity, preventing the homogenization of the resin and a drastic increase in temperature in the zones closest to the ultrasound probe. To face these challenges, the application of high-speed agitation simultaneously with the application of ultrasonic radiation was applied. This allowed, on the one hand, a homogeneous dispersion, and on the other hand, an improvement of the dissipation of heat generated by ultrasonic radiation. The most efficient method was a combination of ultrasound radiation assisted by a high stirring method with the calendar, which was used for the preparation of a carbon fiber reinforced panel (CFRP). The manufactured panel was subjected to dynamic and vibroacoustic tests in order to characterize structural damping and sound transmission loss properties. Under both points of view, the new formulation demonstrated an improved efficiency with reference to a standard CFRP equivalent panel. In fact, for this panel, the estimated damping value was well above the average of the typical values representative of the carbon fiber laminates (generally less than 1%), and also a good vibroacoustic performance was detected as the nanotube based panel exhibited a higher sound transmission loss (STL) at low frequencies, in correspondence with the normal mode participation region. The manufactured panel was also characterized in terms of fire performance using a cone calorimeter and the results were compared to those obtained using a commercially available monocomponent RTM6 (Hexcel composites) epoxy aeronautic resin with the same process and the same fabric and lamination. Compared to the traditional RTM6 resin, the panel with the epoxy nanofilled resin exhibits a significant improvement in fire resistance properties both in terms of a delay in the ignition time and in terms of an increase in the thermal resistance of the material. Compared to the traditional panel, made in the same conditions as the RTM6 resin, the time of ignition of the nanotube-based panel increased by 31 seconds while for the same panel, the heat release rate at peak, the average heat release rate, and the total heat release decreased by 21.4%, 48.5%, and 15%, respectively. The improvement of the fire performance was attributed to the formation of a non-intumescent char due to the simultaneous presence of GPOSS and carbon nanotubes.
机译:不同的工业混合方法和它们的一些组合((1)超声;(2)机械搅拌;(3)通过滚筒机;(4)通过齿轮机;(5)超声辐射+高搅拌)进行了多个基于用二氨基二苯基砜(DDS)固化的航空环氧树脂前体的碳纳米管(MWCNT)进入树脂中。分析了不同参数,超声强度,循环次数,叶片型和齿轮速度上的效果。将纳米填充物包含在树脂中引起粘度的急剧增加,防止树脂的均质化和最接近超声探头的区域中的温度急剧增加。为了面对这些挑战,应用了高速搅拌同时应用超声辐射的应用。这允许,一方面是均匀的分散,另一方面,改善超声辐射产生的热量的耗散。最有效的方法是通过高搅拌方法与日历辅助的超声辐射的组合,用于制备碳纤维增强板(CFRP)。经过制造的面板进行动态和纵传检测,以表征结构阻尼和声音传输损失特性。在两个观点来说,新配方参考标准CFRP等效板说明了提高的效率。事实上,对于该面板,估计的阻尼值远高于碳纤维层压板代表典型值的平均值(通常小于1%),并且由于纳米管基面板显示出更高的纳米管道,因此检测到良好的蝎石声学性能低频的声音传输损耗(STL),与正常模式参与区域相对应。制造的面板还表征了使用锥形量热计的火灾性能,并将结果与​​使用具有相同工艺和相同织物和层压的商业上可获得的单一组分的RTM6(六种复合材料)环氧航空树脂。与传统的RTM6树脂相比,具有环氧纳米氧化物树脂的面板在点火时间的延迟方面具有显着改善的耐火性能,并且就材料的热阻的增加而言。与传统面板相比,在与RTM6树脂相同的条件下,基于纳米管的面板点火时间增加了31秒,同时为同一面板,峰值的热释放率,平均热释放率,和总热释放分别降低21.4%,48.5%和15%。由于GPOSS和碳纳米管的同时存在,导致火灾性能的改善归因于形成非膨胀性。

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