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首页> 外文期刊>Journal of the Physical Society of Japan >Molecular-dynamic investigation of buckling of double-walled carbon nanotubes under uniaxial compression
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Molecular-dynamic investigation of buckling of double-walled carbon nanotubes under uniaxial compression

机译:单轴压缩下双壁碳纳米管屈曲的分子动力学研究

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This paper studies the buckling phenomena and mechanical behavior of single-walled carbon nanotubes (SWNTs) and double-walled carbon nanotubes (DWNTs) via molecular dynamics simulations. The Tersoff interatomic C-C potential is adopted. Using a dimensionless parameter, slenderness ratio (S-R, the ratio of length to diameter), we investigate the mechanical behavior of long and short nanotubes under compression through their buckling modes, total strain energy and strain energy density, as well as post-buckling. The curvatures of strain energy provide a means to measure the Young's modulus of the nanotubes. Moreover, jumps in either the strain energy or strain energy density indicate identical mechanical buckling strains, and are studied in relation to buckling modes. In our simulations, a transition time is observed for short nanotubes to reach stable vase-like buckling mode, indicating a time-dependent property of nanotubes. Furthermore, nanotubes with small SR can bear higher compressive load after their first buckling. In addition, nanotubes with same chirality exhibit roughly the same elastic modulus, regardless of their lengths, when applied compressive strains are less than 5% strain. However, long nanotubes show smaller buckling strength. Effects of temperature at 300 K on buckling strength for SWNT are also discussed in connection to our present study at I K.
机译:本文通过分子动力学模拟研究了单壁碳纳米管(SWNTs)和双壁碳纳米管(DWNTs)的屈曲现象和力学行为。采用Tersoff原子间C-C势。使用无量纲参数,细长比(S-R,长径比),我们研究了长短碳纳米管在压缩状态下的屈曲模式,总应变能和应变能密度以及后屈曲的力学行为。应变能的曲率提供了一种测量纳米管的杨氏模量的方法。此外,应变能或应变能密度的跃变都表示相同的机械屈曲应变,并针对屈曲模式进行了研究。在我们的仿真中,观察到短纳米管达到稳定的花瓶状屈曲模式的过渡时间,表明纳米管具有随时间变化的特性。此外,具有小的SR的纳米管在第一次屈曲后可以承受更高的压缩载荷。另外,当所施加的压缩应变小于5%应变时,具有相同手性的纳米管无论其长度如何都表现出大致相同的弹性模量。但是,长纳米管显示较小的屈曲强度。结合我们目前在I K的研究,还讨论了300 K温度对单壁碳纳米管屈曲强度的影响。

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