原子建模参数对石墨烯断裂模拟的影响

IF 2.2 3区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
M. A. Torkaman-Asadi, M. A. Kouchakzadeh
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引用次数: 0

摘要

为了广泛应用石墨烯,需要研究单层石墨烯薄片的断裂特性。在这篇文章中,我们研究了石墨烯断裂时的有效参数,集中探讨了原子模型对结果的影响,而这些影响在之前的研究中尚未得到充分评估。我们考虑了两种不同的模型来模拟分子动力学中的单轴拉伸试验。通过比较这些模型,我们探索了各种参数对结果的影响,尤其是断裂强度和破坏应变。我们证明,在原始石墨烯薄片中,破坏完全取决于模拟模型。导致这些变化的两个主要因素是加载模式和边界条件。根据模型的不同,得到的结果也大相径庭。然而,在预裂纹石墨烯中,参数受初始缺陷的影响很大,尤其是裂纹尖端。为了更好地理解影响模拟结果的参数,我们研究了缺陷石墨烯片的机械性能与应变率和裂纹尖端面积的关系。这项研究有助于理解这些参数,并澄清了文献中存在差异的部分原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of atomistic modeling parameters on the simulation of fracture in graphene

Effect of atomistic modeling parameters on the simulation of fracture in graphene

For a wide range of graphene applications, it is required to examine the fracture characteristics of single-layer graphene sheets. In this article, we study the effective parameters in fracture of graphene, concentrating on the impact of atomistic modeling on results that have not been adequately evaluated in previous studies. We considered two distinct models to simulate a uniaxial tensile test in molecular dynamics. By comparing these models, we explore the influence of various parameters on the results, particularly fracture strength and failure strain. We demonstrate that in pristine graphene sheets, failure depends entirely on simulation modeling. The two main factors that lead to these variations are loading patterns and boundary conditions. Based on the models, the obtained results are significantly different. Nevertheless, in pre-cracked graphene, parameters are strongly affected by the initial defect, especially the crack tip. To better understand the parameters affecting the simulation results, we investigate the dependence of the mechanical properties of defective graphene sheets on strain rate and crack tip area. This investigation helps to comprehend these parameters and clarifies some of the reasons for the discrepancies in the literature.

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来源期刊
International Journal of Fracture
International Journal of Fracture 物理-材料科学:综合
CiteScore
4.80
自引率
8.00%
发文量
74
审稿时长
13.5 months
期刊介绍: The International Journal of Fracture is an outlet for original analytical, numerical and experimental contributions which provide improved understanding of the mechanisms of micro and macro fracture in all materials, and their engineering implications. The Journal is pleased to receive papers from engineers and scientists working in various aspects of fracture. Contributions emphasizing empirical correlations, unanalyzed experimental results or routine numerical computations, while representing important necessary aspects of certain fatigue, strength, and fracture analyses, will normally be discouraged; occasional review papers in these as well as other areas are welcomed. Innovative and in-depth engineering applications of fracture theory are also encouraged. In addition, the Journal welcomes, for rapid publication, Brief Notes in Fracture and Micromechanics which serve the Journal''s Objective. Brief Notes include: Brief presentation of a new idea, concept or method; new experimental observations or methods of significance; short notes of quality that do not amount to full length papers; discussion of previously published work in the Journal, and Brief Notes Errata.
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