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Investigation of the Dynamic Buckling in the Carbon Nanotube under Impact Torque

机译:冲击扭矩下碳纳米管动态屈曲的研究

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The dynamic buckling caused by propagation of a stress wave in single-wall carbon nanotube subjected to impact torque is investigated. The single-wall carbon nanotube is modeled by a cylindrical shell with semi-infinite length, and the dynamic buckling under impact torque is reduced to a bifurcation problem caused by the propagation of torsion stress wave. The bifurcation problem can be converted to solving a group of nonlinear algebraic equations. The numerical computation is carried out, and the effects of the different parameters on dynamic buckling are discussed. It is found that if critical buckling time of the carbon nanotube is different, the corresponding buckling model is different, too. Relation between the critical buckling stress and the critical buckling time is given. Molecular-dynamic simulations of torsional deformation of a single-wall carbon nanotube have been used to obtain the critical buckling strain, which is 0.064. In this work, the critical buckling strain obtained by the continuum model is 0.061, which is very close to the value 0.064. Single-wall carbon nanotubes have very much powerful anti-impact torque, and the critical buckling shearing stress can reach up to 132GPa.
机译:研究了由经过冲击扭矩的单壁碳纳米管中的应力波传播引起的动态屈曲。单壁碳纳米管通过具有半无限长度的圆柱形壳体建模的,并且在扭转应力波的传播引起的碰撞扭矩下的动态屈曲减小。分叉问题可以转换为求解一组非线性代数方程。进行了数值计算,讨论了不同参数对动态屈曲的影响。结果发现,如果碳纳米管的关键屈曲时间是不同的,则相应的屈曲模型也不同。给出了关键屈曲应力与关键屈曲时间之间的关系。单壁碳纳米管的扭转变形的分子动态模拟已用于获得临界屈曲菌株,其为0.064。在这项工作中,连续模型获得的关键屈曲应变为0.061,非常接近0.064。单壁碳纳米管具有非常强大的抗冲击扭矩,并且关键屈曲剪切应力可达132gPa。

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