...
首页> 外文期刊>RSC Advances >A novel high-content CNT-reinforced SiC matrix composite-fiber by precursor infiltration and pyrolysis process
【24h】

A novel high-content CNT-reinforced SiC matrix composite-fiber by precursor infiltration and pyrolysis process

机译:前驱体渗透热解法制备的新型高含量CNT增强SiC基复合纤维

获取原文
   

获取外文期刊封面封底 >>

       

摘要

A novel carbon nanotube (CNT)-reinforced SiC matrix composite-fiber with excellent mechanical, electrical, and thermal resistant properties was fabricated by filling the macroscopic CNT fibers with a polycarbosilane precursor-derived SiC matrix at 1000 °C. The SiC matrix had a nanoporous and amorphous microstructure, uniformly distributed among the CNTs. The CNT experienced some compressive residual stresses due to the matrix shrinkage during processing, leading to densification of the fiber, increase in the hopping channel number, and strong CNT/SiC interfacial interaction. The composite fiber displayed a brittle-fracture response during tensile deformation, with the tensile modulus and strength ~1.5 times higher those of pure fiber. The dominant fracture mechanism was a bridging effect of SiC on the CNTs that favored better load transfer during tensile deformation. Unlike that for the pure fiber, the mechanical performance of the composite fiber was well maintained after harsh treatment at 1000 °C in Ar, evidencing its excellent thermal resistant property. In addition, the electrical conductivity of the composite-fiber was ~1 time higher than that of the pure fiber and 4–5 times higher than that of the PAN-based carbon fiber, mainly due to the denser fiber microstructure after SiC infiltration. Finally, the composite-fiber showed a better oxidation resistant property, demonstrating promising applicability under high temperature and oxidation conditions.
机译:通过在1000°C下用聚碳硅烷前体衍生的SiC基质填充宏观的CNT纤维,从而制造出具有优异的机械,电气和耐热性能的新型碳纳米管(CNT)增强的SiC基质复合纤维。 SiC基质具有纳米孔和无定形的微观结构,均匀分布在CNT之间。由于加工过程中的基体收缩,CNT经历了一些压缩残余应力,从而导致纤维致密化,跳跃通道数增加以及强大的CNT / SiC界面相互作用。复合纤维在拉伸变形过程中表现出脆性断裂响应,其拉伸模量和强度约为纯纤维的1.5倍。断裂的主要机理是SiC对CNT的桥接作用,有利于拉伸变形过程中更好的载荷传递。与纯纤维不同,复合纤维的机械性能在Ar中在1000°C下经过严格处理后得以很好地保持,从而证明了其优异的耐热性。此外,复合纤维的电导率是纯纤维的电导率的约1倍,比PAN基碳纤维的电导率的4到5倍,这主要是由于SiC渗透后纤维组织更致密。最后,该复合纤维表现出更好的抗氧化性能,证明了其在高温和氧化条件下的应用前景。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号