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Temperature dependence of the tensile properties of single-walled carbon nanotubes: O(N) tight-binding molecular-dynamics simulations

机译:单壁碳纳米管拉伸性能的温度依赖性:O(N)紧密结合分子动力学模拟

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摘要

This paper examines the effect of temperature on the structural stability and mechanical properties of 20-layered (10,10) single-walled carbon nanotubes (SWCNTs) under tensile loading using an O(N) tight-binding molecular-dynamics simulation method. We observed that (10,10) tube can sustain its structural stability for the strain values of 0.23 in elongation and 0.06 in compression at 300 K. Bond-breaking strain value decreases with increasing temperature under stretching but not under compression. The elastic limit, Young's modulus, tensile strength, and Poisson ratio are calculated as 0.10, 0.395 TPa, 83.23 GPa, and 0.285, respectively, at 300 K. In the temperature range from 300 to 900 K, Young's modulus and the tensile strengths decrease with increasing temperature while the Poisson ratio increases. At higher temperatures, Young's modulus starts to increase while the Poisson ratio and tensile strength decrease. In the temperature range from 1200 to 1800 K, the SWCNT is already deformed and softened. Applying strain on these deformed and softened SWCNTs does not follow the same pattern as in the temperature range of 300 to 900 K.
机译:本文使用O(N)紧密结合分子动力学模拟方法研究了温度对20层(10,10)单壁碳纳米管(SWCNT)的结构稳定性和力学性能的影响。我们观察到,(10,10)管在300 K时的伸长应变值为0.23,压缩应变为0.06的情况下可以保持其结构稳定性。在拉伸下,断裂键应变值随温度升高而降低,而在压缩下则不随温度升高而降低。在300 K下的弹性极限,杨氏模量,拉伸强度和泊松比分别计算为0.10、0.395 TPa,83.23 GPa和0.285。在300至900 K的温度范围内,杨氏模量和拉伸强度降低随温度升高而泊松比增加。在较高温度下,杨氏模量开始增加,而泊松比和拉伸强度降低。在1200至1800 K的温度范围内,SWCNT已经变形并软化了。在这些变形和软化的SWCNT上施加应变的方式与在300至900 K的温度范围内不同。

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