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Atomistic and continuum modelling of temperature-dependent fracture of graphene

机译:石墨烯随温度变化的断裂的原子和连续模型

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This paper presents a comprehensive molecular dynamics study on the effects of nanocracks (a row of vacancies) on the fracture strength of graphene sheets at various temperatures. Comparison of the strength given by molecular dynamics simulations with Griffith's criterion and quantized fracture mechanics theory demonstrates that quantized fracture mechanics is more accurate compared to Griffith's criterion. A numerical model based on kinetic analysis and quantized fracture mechanics theory is proposed. The model is computationally very efficient and it quite accurately predicts the fracture strength of graphene with defects at various temperatures. Critical stress intensity factors in mode I fracture reduce as temperature increases. Molecular dynamics simulations are used to calculate the critical values of J integral (J_(IC)) of armchair graphene at various crack lengths. Results show that J_(IC) depends on the crack length. This length dependency of J_(IC) can be used to explain the deviation of the strength from Griffith's criterion. The paper provides an in-depth understanding of fracture of graphene, and the findings are important in the design of graphene based nanomechanical systems and composite materials
机译:本文对纳米裂纹(一排空位)对不同温度下石墨烯片材的断裂强度的影响进行了全面的分子动力学研究。分子动力学模拟所给出的强度与格里菲斯准则和量化断裂力学理论的比较表明,相比格里菲斯准则,量化断裂力学更准确。提出了基于动力学分析和定量断裂力学理论的数值模型。该模型在计算上非常有效,并且可以非常准确地预测在各种温度下带有缺陷的石墨烯的断裂强度。 I型断裂的临界应力强度因子随温度升高而降低。分子动力学模拟用于计算在不同裂纹长度下扶手椅石墨烯的J积分(J_(IC))的临界值。结果表明,J_(IC)取决于裂纹长度。 J_(IC)的这种长度依赖性可以用来解释强度与格里菲斯准则的偏差。本文提供了对石墨烯断裂的深入了解,这一发现对于设计基于石墨烯的纳米力学系统和复合材料非常重要。

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