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Mechanical Properties of Single-walled Carbon Nanotubes - A Finite Element Approach

机译:单壁碳纳米管的力学性能 - 有限元方法

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In this paper, the mechanical properties, such as the axial and radial Young's moduli, shear moduli, buckling loads and natural frequencies, of single-walled carbon nanotubes, are estimated by a finite element approach. Each carbon nanotube is simulated as a frame-like structure and the primary bonds between two nearest-neighboring atoms are treated as isotropic beam members with a uniform circular cross-section. In the modeling work, the BEAM4 element in commercial code ANSYS is selected to simulate the carbon bonds and the atoms are nodes. As to the input parameters of the BEAM4 element, they are determined via the concept of energy equivalence between molecular dynamics and structural mechanics, and represented in terms of the force constants of the carbon bonds found in molecular mechanics. Based on this modeling concept, finite element models of both armchair and zigzag types of carbon nanotubes with different sizes are established and the mechanical properties of these tubes are then effectively predicted. Most of the computed results which can be compared with existing results show good agreement. Moreover, the effects of tube diameter, length etc., on the mechanical properties are also investigated.
机译:在本文中,通过有限元方法估计单壁碳纳米管的机械性能,例如轴向和径向杨的模型,剪切模量,屈曲载荷和自然频率。每个碳纳米管被模拟为框架状结构,并且两个最近相邻原子之间的主键被用均匀的圆形横截面被视为各向同性梁构件。在建模工作中,选择商业代码ANSYS中的光束4元件以模拟碳键,原子是节点。关于光束4元件的输入参数,通过分子动力学和结构力学之间的能量等效的概念来确定它们,并且在分子机制中发现的碳键的力常数方面表示。基于该建模概念,建立了具有不同尺寸的扶手椅和锯齿形类型的扶手和锯齿形类型的有限元模型,然后有效地预测这些管的机械性能。大多数计算结果可以与现有结果进行比较,表现出良好的一致性。此外,还研究了管直径,长度等对机械性能的影响。

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