IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Mechanics of Materials Pub Date : 2025-02-17 DOI:10.1016/j.mechmat.2025.105297
Akash Raikwar, Sandeep Singh
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引用次数: 0

摘要

本文介绍了一种基于原子-真空耦合和有限元模型的高效计算数值模拟,用于分析石墨烯薄片在有限温度下受到横向和平面压缩载荷时的静态响应。目前的多尺度方法基于特尔索夫-布伦纳(Tersoff-Brenner)势能和格林-拉格朗日(Green-Lagrange)非线性,通过应变位移关系将二面能项纳入原子相互作用中。原子级变形(键长、键角和二面角)通过二次型考奇-博恩规则与连续尺度耦合。连续尺度的控制方程通过有限元法求解。开发了单独的子程序来计算应力/力矩结果矩阵,并将切线构成矩阵嵌入元素方程的高斯四次方数值积分中。详细研究了二面能量项和有限温度对石墨烯片线性和非线性弯曲响应以及后屈曲分析的影响。此外,作者还针对石墨烯薄片的非线性响应研究了其在早期工作中提出的一组新的经验参数。
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A concurrent multiscale simulation for nonlinear flexural and postbuckling analyses of single-layer graphene sheets at finite temperature
A computationally efficient numerical simulations based on an atomistic-continuum coupling in conjunction with a finite element model are presented for the static response of graphene sheets under transverse and in-plane compressive loads at finite temperatures. The present multiscale approach incorporates the dihedral energy terms in atomic interactions based on Tersoff-Brenner potential and Green-Lagrange nonlinearity through strain displacement relations. The atomic level deformations (bond lengths, bond angles and dihedral angles) are coupled to continuum scale through the quadratic-type Cauchy Born rule. The governing equations at continuum scale are solved through finite element method. The separate subroutine is developed to calculate stress/moments resultants, and the tangent constitutive matrix is embedded in the Gauss-quadrature numerical integration of the elemental equations. The influence of dihedral energy term and finite temperature on the linear and nonlinear bending response and postbuckling analyses of graphene sheets is investigated in detail. In addition, a new set of empirical parameters proposed by authors in their earlier work has also been examined for the nonlinear response of graphene sheets.
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来源期刊
Mechanics of Materials
Mechanics of Materials 工程技术-材料科学:综合
CiteScore
7.60
自引率
5.10%
发文量
243
审稿时长
46 days
期刊介绍: Mechanics of Materials is a forum for original scientific research on the flow, fracture, and general constitutive behavior of geophysical, geotechnical and technological materials, with balanced coverage of advanced technological and natural materials, with balanced coverage of theoretical, experimental, and field investigations. Of special concern are macroscopic predictions based on microscopic models, identification of microscopic structures from limited overall macroscopic data, experimental and field results that lead to fundamental understanding of the behavior of materials, and coordinated experimental and analytical investigations that culminate in theories with predictive quality.
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