首页> 外文会议>ASME Pressure Vessels and Piping conference >OPTIMIZATION OF CURING CONDITIONS AND NANOFILLER INCORPORATION FOR PRODUCTION OF HIGH PERFORMANCE LAMINATED KEVLAR/EPOXY NANOCOMPOSITES
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OPTIMIZATION OF CURING CONDITIONS AND NANOFILLER INCORPORATION FOR PRODUCTION OF HIGH PERFORMANCE LAMINATED KEVLAR/EPOXY NANOCOMPOSITES

机译:生产高性能层状芳纶/环氧树脂纳米复合材料的条件优化和纳米填料的掺入

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摘要

Kevlar composite materials are getting scientific interest in repairing of oil and gas pipelines in both offshore and onshore due to their unique properties. Curing is one of the major factor in deciding the final mechanical performance of laminated Kevlar/epoxy nanocomposites. The parameters such as curing time, temperature and applied pressure during the hot pressing will affect chemistry of crosslinking of the epoxy matrix and interaction of epoxy with the Kevlar fiber. The present study is carried out to evaluate the optimal curing conditions of the Kevlar/epoxy nanocomposites. Three different nanofillers (namely Multi walled Carbon nanotubes (MWCNT), Silicon Carbide (SiC) and Aluminum Oxide (Al_2O_3)) are incorporated in different weight percentage. Differential Scanning Calorimetry (DSC) and Thermo-Gravimetric Analysis (TGA) tests are carried out to determine the thermal stability and optimal curing conditions. Mechanical performance is investigated by conducting flexure, and drop weight tests. The results show that, the optimal curing temperature for maximizing the mechanical properties is at 170°C. Peeling off the Kevlar layers are observed for nanocomposite samples cured under 100°C. Mechanical strength of the composites is enhanced by optimizing the curing conditions and nanofiller contents.
机译:凯夫拉尔复合材料因其独特的性能而在海上和陆上油气管道的维修方面引起了科学兴趣。固化是决定层压Kevlar /环氧树脂纳米复合材料最终机械性能的主要因素之一。热压过程中的固化时间,温度和施加压力等参数将影响环氧基质的交联化学以及环氧与凯夫拉尔纤维的相互作用。进行本研究以评估凯夫拉尔/环氧纳米复合材料的最佳固化条件。以不同的重量百分比掺入了三种不同的纳米填料(即多壁碳纳米管(MWCNT),碳化硅(SiC)和氧化铝(Al_2O_3))。进行差示扫描量热法(DSC)和热重分析(TGA)测试以确定热稳定性和最佳固化条件。通过进行挠曲和落锤测试来研究机械性能。结果表明,使机械性能最大化的最佳固化温度为170°C。对于在100°C下固化的纳米复合材料样品,观察到了凯夫拉层的剥离。通过优化固化条件和纳米填料含量,可以提高复合材料的机械强度。

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