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首页> 外文期刊>Journal of nanoscience and nanotechnology >Characterizing the Stress Intensity Factor of Graphene Sheet with Central Crack
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Characterizing the Stress Intensity Factor of Graphene Sheet with Central Crack

机译:表征具有中心裂纹的石墨烯片的应力强度因子

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This paper aims to characterize the stress intensity factor (SIF) of atomistic graphene sheet with central crack subjected to uniaxial loading. The equilibrium configuration of the defective graphene sheet with missing covalent bonds was generated through molecular dynamics (MD) simulation. Subsequently, the local stress distribution near the crack tip of atomistic structure was evaluated using the Hardy stress formulation as well as the non-local elasticity theory. Based on the local stress distributions, the SIF of the atomistic graphene sheet was determined through the projection process. In comparison, the graphene sheet was also treated as a continuum solid, and the stress distribution near the crack tip as well as the SIF were evaluated from the finite element method (FEM). In an attempt to understand the crack size effect, the crack length was assumed to vary from 3 lattice distance to around 80 lattice distance. Results revealed that the SIF calculated based on the nonlocal elasticity theory in conjunction with the projection process is quite sensitive to the selection of the projection point. However, for the Hardy stress distribution, when the projection position is 1 lattice distance away from the crack tip, the SIF is quite consistent and the result is compatible to that obtained from the FEM analysis. Moreover, the agreement is better as the crack size is increasing. Therefore, the SIF calculated based on the Hardy stress formulation together with the projection approach could be a physical quantity correlating the defective atomistic graphene sheet with its continuum counterpart.
机译:本文旨在表征单轴加载下具有中心裂纹的原子性石墨烯薄板的应力强度因子(SIF)。通过分子动力学(MD)模拟生成了具有缺失共价键的缺陷石墨烯片的平衡构型。随后,使用Hardy应力公式以及非局部弹性理论评估了原子结构裂纹尖端附近的局部应力分布。基于局部应力分布,通过投影过程确定了原子性石墨烯片的SIF。相比之下,石墨烯片也被视为连续体,并且通过有限元方法(FEM)评估了裂纹尖端附近的应力分布以及SIF。为了理解裂纹尺寸的影响,假设裂纹长度从3格距离变化到大约80格距离。结果表明,基于非局部弹性理论和投影过程计算出的SIF对投影点的选择非常敏感。但是,对于哈代应力分布,当投影位置距裂纹尖端的距离为1个晶格距离时,SIF非常一致,并且结果与从FEM分析获得的结果兼容。而且,随着裂纹尺寸的增加,一致性更好。因此,基于Hardy应力公式和投影方法计算出的SIF可能是使有缺陷的原子性石墨烯片与其连续体相对应的物理量。

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