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Bending and shear moduli of single-walled carbon nanotubes

机译:单壁碳纳米管的弯曲和剪切模量

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摘要

Elastic properties of single-walled carbon nanotubes (SWCNT) obtained experimentally and computationally are reviewed. Attention is paid particularly on the evaluation of Young's and shear moduli of SWCNT. A finite element method (FEM) previously presented by Li and Chou is modified with the Poisson's ratio effect included in the determination of Young's modulus and shear modulus of SWCNT. It is pointed out that within the linear regime, the Young's and shear moduli of SWCNT have been estimated to be constant. This is in contrast to those appeared in the literature in which a wide range of Young's moduli of SWCNT has been reported. The important implications are that the classical theory of elasticity can be employed in the determination of Young's and shear moduli of elasticity of SWCNT, and that nanosensors, nanodevices, and advanced materials embedded with SWCNT can be designed without resort to adopting the uncertain Young's and shear moduli of SWCNT. The modified FEM of treating the SWCNT as a spatial cylindrical frame structure is very simple to use, very economical, and efficient computationally compared with those based on particle or molecular dynamics (MD) methods, simulation and continuum mechanics (CM) methods where huge computational resources are necessary.
机译:综述了通过实验和计算获得的单壁碳纳米管(SWCNT)的弹性性能。特别关注SWCNT的杨氏模量和剪切模量的评价。对 Li 和 Chou 之前提出的有限元方法 (FEM) 进行了修改,在确定 SWCNT 的杨氏模量和剪切模量时,将泊松比效应包含在内。指出,在线性范围内,SWCNT的杨氏模量和剪切模量估计为恒定的。这与文献中出现的那些形成鲜明对比,这些文献中已经报道了广泛的SWCNT杨氏模量。其重要意义在于,经典的弹性理论可以用于确定SWCNT的杨氏和剪切模量,并且可以设计嵌入SWCNT的纳米传感器、纳米器件和先进材料,而无需采用SWCNT的不确定杨氏模量和剪切模量。将SWCNT视为空间圆柱框架结构的改进有限元,与基于粒子或分子动力学(MD)方法、模拟和连续介质力学(CM)方法的改进有限元相比,使用简单、经济且计算高效,需要大量计算资源。

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