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Ghadyani, Ghasem; Soufeiani, Leila; Öchsner, Andreas, E-mail: g.ghadyani.g@gmail.com, E-mail: soufeiani.leila@gmail.com, E-mail: andreas.oechsner@gmail.com2017
AbstractAbstract
[en] Highlight• This study shows that the shear modulus of asymmetric carbon nanotubes can be characterized based on the aspect ratio and the chiral angle. • The general equations show a linear relation between the shear behavior of asymmetric and symmetric configurations. • The presented concept is applicable to any type of nanotubes and nanosheets under appropriate conditions. Asymmetric configurations of single-walled carbon nanotubes consist of a huge number of varieties compared to symmetric structures. A comprehensive characterization of all possible chiralities has been conducted in this research for the first time. In order to characterize asymmetric single-walled carbon nanotubes (SWCNTs), several finite element models have been employed to reach a logical relation between the geometry of the symmetric and asymmetric configurations and their shear modulus. Two groups of asymmetric structures have been selected to characterize asymmetric configurations. The chiral angle (θ) has been applied in this research to account for the shear behaviour of chiral configurations. The chiral angle perception has been used for a new insight of balancing between physical resemblances and shear behaviour of symmetric and asymmetric configurations. In the last section, the trend of the shear behaviour and chiral angle for asymmetric groups resulted in a general equation for predicting an asymmetric configuration by symmetric structures with high accuracy as the main novelty of the current study. This kind of characterization can be developed, not only for other mechanical properties of SWCNTs, but is also applicable for the characterization and the design of other composite nanotubes such as BN, BC3 and BC2N nanotubes.
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Source
S026412751631499X; Available from http://dx.doi.org/10.1016/j.matdes.2016.11.097; Copyright (c) 2016 Elsevier Ltd. All rights reserved.; Country of input: International Atomic Energy Agency (IAEA)
Record Type
Journal Article
Journal
Materials and Design; ISSN 0264-1275;
; v. 116; p. 136-143

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