首页> 外文会议>DoD HPCMP Users Group Conference, DoD HPCMP UGC, 2008 >Large-Scale Atomic/Molecular Massively Parallel Simulator (LAMMPS) Simulations of the Effects of Chirality and Diameter on the Pullout Force in a Carbon Nanotube Bundle
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Large-Scale Atomic/Molecular Massively Parallel Simulator (LAMMPS) Simulations of the Effects of Chirality and Diameter on the Pullout Force in a Carbon Nanotube Bundle

机译:手性和直径对碳纳米管束中拉出力的影响的大规模原子/分子大规模并行模拟器(LAMMPS)模拟

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The unique mechanical, electrical, and thermal properties of carbon nanotube (CNT) molecules place them at the forefront of nanotechnology. The mechanical properties of carbon nanotubes such as high tensile strength and modulus provide an effective pathway for better construction materials. Before this potential can be realized, effective techniques of creating load transfer in bulk material must be developed. Carbon nanotubes possess a variety of chiralities and diameters and can cluster into self-organizing, aligned bundles caused by van der Waals (vdW) forces. This paper describes the results of molecular mechanics simulations using the Large-scale Atomic/Molecular Massively Parallel Simulator (LAMMPS) molecular dynamics code to examine the effect that chirality and diameter have on the pullout force of a single tube from a bundle with hexagonal closest packing (HCP). Pullout force is defined as the force required to extract a tube from a bundle. The different chiralities and diameters create different corrugated surfaces and different areas of contact that influence pullout force. Studying the interaction between CNTs is essential for improving the fundamental understanding of load transfer from CNT to CNT. Additionally, since larger diameter CNTs deform against one another in a bundle, the relationship between diameter and pullout force is quantified in this paper. This research will be used as a basis for studying more advanced load transfer techniques such as twisting, sidewall functionalization, and knotting.
机译:碳纳米管(CNT)分子的独特机械,电气和热性质将它们放在纳米技术的最前沿。碳纳米管的机械性能,例如高拉伸强度和模量为更好的建筑材料提供了有效的途径。在这种潜力可以实现之前,必须开发在散装材料中产生负载传输的有效技术。碳纳米管具有各种手性和直径,并且可以将由范德华(VDW)力引起的自组织,对齐的捆绑。本文介绍了使用大规模原子/分子大规模平行模拟器(LAMMPS)分子动力学代码的分子力学模拟的结果,以检查手性和直径对单管的拉伸力从带六角最近填料的束的影响(HCP)。拉伸力被定义为从束中提取管所需的力。不同的手性和直径产生不同的波纹表面和影响拉伸力的不同接触区域。研究CNT之间的相互作用对于改善从CNT到CNT的负载转移的基本理解是必不可少的。另外,由于较大的直径CNT在束中彼此变形,因此在本文中量化了直径和拉伸力之间的关系。该研究将被用作研究更先进的负载转移技术的基础,例如扭曲,侧壁官能化和打结。

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