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Mechanical properties and deformation behavior of carbon nanotubes calculated by a molecular mechanics approach

机译:用分子力学方法计算碳纳米管的力学性能和变形行为

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Carbon nanotubes are due to their outstanding mechanical properties destined for a wide range of possible applications. Since the knowledge of the material behavior is vital regarding the possible applications, experimental and theoretical studies have been conducted to investigate the properties of this promising material. The aim of the present research is the calculation of mechanical properties and of the mechanical behavior of single wall carbon nanotubes (SWCNTs). The numerical simulation was performed on basis of a molecular mechanics approach. Within this approach two different issues were taken into account: (i) the nanotube geometry and (ii) the modeling of the covalent bond. The nanotube geometry is captured by two different approaches, the roll-up and the exact polyhedral model. The covalent bond is modeled by a structural molecular mechanics approach according to Li and Chou. After a short introduction in the applied modeling techniques, the results for the Young's modulus for several SWCNTs are presented and are discussed extensively. The obtained numerical results are compared to results available in literature and show an excellent agreement. Furthermore, deviations in the geometry stemming from the different models are given and the resulting differences in the numerical findings are shown. Within the investigation of the deformation mechanisms occurring in SWCNTs, the basic contributions of each individual covalent bond are considered. The presented results of this decomposition provide a deeper understanding of the governing deformation mechanisms in SWCNTs.
机译:碳纳米管具有出色的机械性能,可用于各种可能的应用。由于材料行为的知识对于可能的应用至关重要,因此已经进行了实验和理论研究来研究这种有前途的材料的性能。本研究的目的是计算单壁碳纳米管(SWCNTs)的力学性能和力学性能。数值模拟是基于分子力学方法进行的。在该方法中,考虑了两个不同的问题:(i)纳米管的几何形状和(ii)共价键的建模。纳米管的几何形状通过两种不同的方法来捕获,即卷起和精确的多面体模型。根据Li和Chou,共价键通过结构分子力学方法建模。在对应用的建模技术进行简短介绍之后,介绍并广泛讨论了几种SWCNT的杨氏模量结果。将获得的数值结果与文献中的结果进行比较,并显示出极好的一致性。此外,给出了源自不同模型的几何形状偏差,并显示了数值结果的差异。在研究SWCNT中发生的变形机理的过程中,考虑了每个单独的共价键的基本作用。分解的结果提供了对SWCNTs中控制变形机制的更深入的了解。

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