Title of article :
Analytical and numerical techniques to predict carbon nanotubes properties
Author/Authors :
A.L. Kalamkarov، نويسنده , , A.V. Georgiades، نويسنده , , S.K. Rokkam، نويسنده , , V.P. Veedu، نويسنده , , M.N. Ghasemi-Nejhad، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2006
Abstract :
In this paper, two different approaches for modeling the behaviour of carbon nanotubes are presented. The first method
models carbon nanotubes as an inhomogeneous cylindrical network shell using the asymptotic homogenization method.
Explicit formulae are derived representing Young’s and shear moduli of single-walled nanotubes in terms of pertinent
material and geometric parameters. As an example, assuming certain values for these parameters, the Young’s modulus
was found to be 1.71 TPa, while the shear modulus was 0.32 TPa. The second method is based on finite element models.
The inter-atomic interactions due to covalent and non-covalent bonds are replaced by beam and spring elements, respectively,
in the structural model. Correlations between classical molecular mechanics and structural mechanics are used to
effectively model the physics governing the nanotubes. Finite element models are developed for single-, double- and
multi-walled carbon nanotubes. The deformations from the finite element simulations are subsequently used to predict
the elastic and shear moduli of the nanotubes. The variation of mechanical properties with tube diameter is investigated
for both zig-zag and armchair configurations. Furthermore, the dependence of mechanical properties on the number of
nanotubules in multi-walled structures is also examined. Based on the finite element model, the value for the elastic modulus
varied from 0.9 to 1.05 TPa for single and 1.32 to 1.58 TPa for double/multi-walled nanotubes. The shear modulus
was found to vary from 0.14 to 0.47 TPa for single-walled nanotubes and 0.37 to 0.62 for double/multi-walled nanotubes.
Keywords :
Finite element analysis , mechanical properties , Asymptotic homogenization , Nanostructures , Shell theory , Carbon nanotube
Journal title :
International Journal of Solids and Structures
Journal title :
International Journal of Solids and Structures