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Energy dissipation capability and impact response of carbon nanotube buckypaper: A coarse-grained molecular dynamics study

机译:碳纳米管巴基纸的耗能能力和冲击响应:粗粒分子动力学研究

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Carbon nanotube (CNT) buckypaper, a randomly non-woven fibrous film structure, has enjoyed its popularity in the sensor, actuator, filtration, and distillation devices owing to its exceptional mechanical and electrical properties. However, there is no report aimed at unraveling the fundamental mechanism of its energy-absorption capability under high-velocity impact despite its extraordinary frequency-and temperature-invariant viscoelastic properties. To bridge this gap, here coarse-grained molecular dynamics simulations are implemented to investigate effects of the external impact energy, the density of the buckypaper, and the length of individual CNTs on energy dissipation capability and dynamic response of the buckypaper under high-velocity impacts. Simulation results indicate that within its deformation limit the buckypaper possesses extremely high kinetic energy dissipation efficiency. The critical impact energy related to the deformation limit of the buckypaper tightly depends on the impact velocity since the same impact energy with a larger impact velocity yields less compression. The energy dissipation capability and impact response of the buckypaper are demonstrated to be independent of the length of individual SWCNTs. Overall, owing to the remarkable energy dissipation capability and flexibility of the buckypaper, it can be regarded as a promising candidate for energy dissipation. (C) 2016 Elsevier Ltd. All rights reserved.
机译:碳纳米管(CNT)布基纸是一种随机的非织造纤维膜结构,由于其卓越的机械和电气性能,在传感器,执行器,过滤和蒸馏装置中广受欢迎。然而,没有报告旨在揭示其在高速冲击下的能量吸收能力的基本机理,尽管其具有非凡的频率和温度不变的粘弹性能。为了弥合这一差距,这里进行了粗粒分子动力学模拟,以研究外部冲击能量,巴克纸的密度以及单个CNT的长度对高速冲击下巴克纸的能量耗散能力和动态响应的影响。 。仿真结果表明,布基纸在其变形极限内具有极高的动能耗散效率。与巴克纸的变形极限有关的临界冲击能量紧密取决于冲击速度,因为具有较大冲击速度的相同冲击能量产生的压缩较小。证实了巴基纸的能量耗散能力和冲击响应与单个SWCNT的长度无关。总体而言,由于巴基纸具有出色的耗能能力和柔韧性,因此可以视为有希望的耗能候选材料。 (C)2016 Elsevier Ltd.保留所有权利。

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