کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
820932 | 906733 | 2011 | 8 صفحه PDF | دانلود رایگان |

A theoretical investigation on the strength and stiffness of carbon nanotubes (CNTs) under combined shortening and twisting strains is presented. CNTs with similar length-to-diameter aspect ratios, L/D, but different atomic structures (zig-zag, armchair and chiral) have been selected. Molecular dynamics (MD) simulations have been performed to study the critical buckling behaviour and the pre-critical and post-critical stiffness of CNTs under combined shortening–twisting conditions. The main results are presented in the form of interaction diagrams between the critical strain and the critical angle of twist per unit of length. An interaction equation is proposed and validated by comparison with the MD results. If shortening is more dominant than twisting, the strain energy at the onset of buckling drops considerably with the increase of the twisting–shortening rate. If twisting is more influential than shortening, the energy at the onset of buckling decreases very slowly with the twisting–shortening rate. We also found an interaction factor of 1.5 for CNTs under combined shortening–twisting, which is much lower than the value 2.0 commonly adopted for circular tubes at macro-scale. We conclude that CNTs are much more sensitive to buckling under shortening–twisting interaction than macro-scale tubes.
► CNTs used as nano-devices are often submitted to combined shortening–twisting.
► Shortening–twisting interaction diagrams are given for zig-zag, armchair and chiral CNTs.
► The shortening–twisting interaction coefficient is found to be around 1.5.
► The direction of twisting plays a pivotal role in the strength of chiral CNTs.
► CNTs are more sensitive to buckling under shortening-twisting interaction than macro-scale tubes.
Journal: Composites Science and Technology - Volume 71, Issue 16, 14 November 2011, Pages 1811–1818