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Three-dimensional multifunctional hierarchical nanocomposites: multifunctional materials

机译:三维多功能分层纳米复合材料:多功能材料

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Traditional 1-D and 2-D composite materials have excellent in-plane properties. However, they are susceptible to interlaminar crack and crack growth leading to delaminations and catastrophic failure of the composite structures. To remedy these problems, researchers have developed 3-D composites using through-the-thickness stitching and/or braiding. However, these two techniques have their own problems. For braiding, the part thickness should be known a priori, which is not practical. Besides the fiber architecture is not arranged orthogonally. For the stitching, it has been shown that while through-the-thickness properties increase, in-plane properties decrease. Here, we explain a novel technique, developed by the authors and co-workers, to develop 3-D multifunctional hierarchical nanocomposites with superior properties. In this approach, multi-walled carbon nanotubes (MWCNTs) are grown vertically over 2-D microfiber woven fabric cloth, without altering the 2-D cloth architecture, to create nano-forests coating of MWCNTs in the thickness direction to yield 3-D orthogonal fiber architechture. The 3-D nano-forest woven cloths are later impregnated with the resins and are subsequently stacked, vacuum bagged, and cured to give 3-D multifunctional hierarchical nanocomposites. Since MWCNTs have superior mechanical, thermal, and electrical properties, the hierarchically developed 3-D multifunctional nanocomposites have enhanced mechanical, thermal, thermomechanical, damping, and electrical properties by many folds.
机译:传统的1-D和2-D复合材料具有出色的面内特性。然而,它们易于对层间裂缝和裂缝增长来影响,导致复合结构的分层和灾难性失效。为了解决这些问题,研究人员使用厚度缝合和/或编织开发了3d复合材料。但是,这两种技术都有自己的问题。对于编织,零件厚度应该是先验的,这是不实用的。除了光纤架构没有正交的架构。对于缝合,已经表明,虽然通过 - 厚度的性能增加,面内特性降低。在这里,我们解释了作者和同事开发的新型技术,开发了具有优异性能的3-D多功能分层纳米复合材料。在这种方法中,多壁碳纳米管(MWCNT)在2-D微纤维织物布垂直生长,而不改变2-D布架构,以在厚度方向上产生MWCNT的纳米林涂层,以产生3-D.正交光纤architechture。 3-D纳米林编织布后来浸渍树脂,随后堆叠,真空袋,并固化,得到3-D多官能分层纳米复合材料。由于MWCNT具有卓越的机械,热和电性能,因此分层开发的3-D多功能纳米复合材料具有增强的机械,热,热机械,阻尼和电气性能,通过许多折叠。

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