首页> 外文期刊>RSC Advances >Energetic interpenetrating polymer network (EIPN): enhanced thermo-mechanical properties of NCO-fMWCNTs/HTPB PU and alkyne-fMWCNTs/acyl-GAP based nanocomposite and its propellants
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Energetic interpenetrating polymer network (EIPN): enhanced thermo-mechanical properties of NCO-fMWCNTs/HTPB PU and alkyne-fMWCNTs/acyl-GAP based nanocomposite and its propellants

机译:高能互穿聚合物网络(EIPN):增强了NCO-fMWCNTs / HTPB PU和炔烃-fMWCNTs /酰基-GAP基纳米复合材料及其推进剂的热机械性能

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摘要

A novel energetic interpenetrating polymer network (EIPN) nanocomposite was designed and tested, which was comprised of functionalized MWCNTs (fMWCNTs) covalently attached to hydroxyl terminated polybutadiene (HTPB) and glycidyl azide polymer (GAP) by a facile in situ polymerization technique. Three types of fMWCNTs (COOH-fMWCNTs, NCO-fMWCNTs and alkyne-fMWCNTs) were synthesized and well characterized by Fourier transform infrared spectroscopy (FTIR), X-ray photoelectron spectroscopy (XPS), Raman spectroscopy, transmission electron microscopy (TEM), dynamic mechanical analysis (DMA) and thermogravimetric analysis (TGA). The effect of fMWCNTs on the mechanical, dispersion, and thermal properties of NCO-fMWCNTs/HTPB PU and alkyne-fMWCNTs/acyl-GAP click was investigated and synergetic properties were achieved as compared to neat HTPB and GAP PU networks. Here we develop for the first time an EIPN nanocomposite based on NCO-fMWCNTs/HTPB PU and alkyne-fMWCNTs/acyl-GAP with different weight ratios and superior tensile strength of 8.17 MPa with 312% elongation at break was achieved with thermally more stable crosslinked networks. A solid composite propellant based on NCO-fMWCNTs/HTPB PU and alkyne-fMWCNTs/acyl-GAP was also prepared and mechanical and thermal properties investigated. An extensive enhancement in the thermo-mechanical properties of the NCO-fMWCNTs/HTPB PU and alkyne-fMWCNTs/acyl-GAP EIPN based nanocomposite have been achieved which may be ascribed to good dispersion of fMWCNTs in the polymer matrix, strong interfacial bonding and entanglements of crosslinked networks during in situ polymerization. This EIPN based composite propellant with improved mechanical and thermal properties paves the way for its straightforward application as a solid fuel in advanced missile technology.
机译:设计并测试了一种新型的高能互穿聚合物网络(EIPN)纳米复合材料,该复合材料由功能化的MWCNT(fMWCNT)通过便捷的原位聚合技术共价附于羟基封端的聚丁二烯(HTPB)和缩水甘油基叠氮化物聚合物(GAP)组成。合成了三种类型的fMWCNTs(COOH-fMWCNTs,NCO-fMWCNTs和炔烃-fMWCNTs),并通过傅里叶变换红外光谱(FTIR),X射线光电子能谱(XPS),拉曼光谱,透射电子显微镜(TEM)进行了很好的表征,动态力学分析(DMA)和热重分析(TGA)。研究了fMWCNTs对NCO-fMWCNTs / HTPB PU和炔烃-fMWCNTs / acyl-GAP Click的机械,分散和热性能的影响,并与纯HTPB和GAP PU网络相比,获得了协同性能。在这里,我们首次开发了基于NCO-fMWCNTs / HTPB PU和炔烃-fMWCNTs /酰基-GAP的EIPN纳米复合材料,该复合材料具有不同的重量比和8.17 MPa的优异拉伸强度以及312%的断裂伸长率,并具有热稳定的交联性网络。还制备了基于NCO-fMWCNTs / HTPB PU和炔烃-fMWCNTs /酰基-GAP的固体复合推进剂,并研究了其机械性能和热性能。 NCO-fMWCNTs / HTPB PU和炔烃-fMWCNTs /酰基-GAP EIPN基纳米复合材料的热机械性能已得到广泛提高,这可以归因于fMWCNTs在聚合物基质中的良好分散性,牢固的界面键合和缠结原位聚合过程中交联网络的分布。这种基于EIPN的复合推进剂具有改善的机械和热性能,为将其直接用作先进导弹技术中的固体燃料铺平了道路。

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