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首页> 外文期刊>International Journal of Nanotechnology >Carbon nanotube-polyurethane nanocomposites for structural vibration damping
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Carbon nanotube-polyurethane nanocomposites for structural vibration damping

机译:用于结构减振的碳纳米管-聚氨酯纳米复合材料

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摘要

Nanotechnology is an area which has vast potentials for turning fundamental research into successful innovations. In the present paper, damping in Polyurethane (PU)-Multiwalled carbon nanotube (MWNT) nanocomposites is studied by Dynamic Mechanical Analysis (DMA) and Free Layer Damping (FLD) methods. MWNT is functionalised using HNO_3/H_2SO_4 mixture, thionyl chloride and ethylene diamine to introduce amide groups on the nanotube surface. Composites are prepared from a two-part PU resin system and the functionalised MWNT. The work addresses the concept of damping from molecular level interactions using DMA to an actual vibration damping technique, namely FLD. DMA study clearly shows a 70% increase of loss tangent of the nanocomposites as compared to neat PU, indicative of the high damping efficacy. The effectiveness of the developed nanocomposite is established by FLD measurements wherein a good damping of the order of 5-15 dB is observed in the frequency range of 10-1000 Hz, over that of neat PU. The added advantage of the system is the damping capability in the low frequency region also. The study is expected to be helpful in finding damping applications in aircraft and missile substructures, ships and submarines, machinery supports, mounting platforms of electronic equipment, bridges, buildings, etc.
机译:纳米技术是一个将基础研究转化为成功创新的巨大潜力的领域。本文通过动态力学分析(DMA)和自由层阻尼(FLD)方法研究了聚氨酯(PU)-多壁碳纳米管(MWNT)纳米复合材料中的阻尼。 MWNT使用HNO_3 / H_2SO_4混合物,亚硫酰氯和乙二胺进行官能化,以在纳米管表面引入酰胺基。复合材料由两部分的PU树脂体系和功能化的MWNT制成。这项工作解决了从使用DMA的分子水平相互作用到实际的振动阻尼技术(即FLD)的阻尼概念。 DMA研究清楚地表明,与纯PU相比,纳米复合材料的损耗角正切增加了70%,这表明高阻尼效果。发达的纳米复合材料的有效性通过FLD测量得以确定,其中在10-1000 Hz的频率范围内,与纯PU相比,可以看到5-15 dB的良好阻尼。该系统的附加优点是在低频区域的阻尼能力。预期该研究将有助于发现飞机和导弹子结构,船舶和潜艇,机械支撑,电子设备的安装平台,桥梁,建筑物等的阻尼应用。

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