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Graphene Foam: Uniaxial Tension Behavior and Fracture Mode Based on a Mesoscopic Model

机译:石墨烯泡沫:基于介观模型的单轴张力行为和断裂模式

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Because of the combined advantages of both porous materials and two-dimensional (2D) graphene sheets, superior mechanical properties of three-dimensional (3D) graphene foams have received much attention from material scientists and energy engineers. Here, a 2D mesoscopic graphene model (Modell. Simul. Mater. Sci. Eng. 2011, 19, 054003), was expanded into a 3D bonded graphene foam system by utilizing physical cross-links and van der Waals forces acting among different mesoscopic graphene flakes by considering the debonding behavior, to evaluate the uniaxial tension behavior and fracture mode based on in situ SEM tensile testing (Carbon 2015, 85, 299). We reasonably reproduced a multipeak stress–strain relationship including its obvious yielding plateau and a ductile fracture mode near 45° plane from the tensile direction including the corresponding fracture morphology. Then, a power scaling law of tensile elastic modulus with mass density and an anisotropic strain-dependent Poisson’s ratio were both deduced. The mesoscopic physical mechanism of tensile deformation was clearly revealed through the local stress state and evolution of mesostructure. The fracture feature of bonded graphene foam and its thermodynamic state were directly navigated to the tearing pattern of mesoscopic graphene flakes. This study provides an effective way to understand the mesoscopic physical nature of 3D graphene foams, and hence it may contribute to the multiscale computations of micro/meso/macromechanical performances and optimal design of advanced graphene-foam-based materials.]]>
机译:<!图像/中/ NN-2017-034745_0007.gif“>由于多孔材料和二维(2D)石墨烯片的合并优势,三维(3D)石墨烯泡沫的优异机械性能从材料中获得了很多关注科学家和能源工程师。这里,一个2D脑镜石墨烯模型( Modell。Simul。Mater。SCI。ENG 2011 , 19 ,054003)被扩展为a 3D通过考虑剥离行为来利用物理交叉链路和范德瓦尔斯在不同介于介面石墨烯剥落中作用的粘接石墨烯泡沫系统,以评估基于SEM拉伸的的单轴张力行为和断裂模式测试(碳 2015 , 85 ,299)。我们合理地复制了多峰应力 - 应变关系,包括其明显的屈服平台和从包括相应裂缝形态的拉伸方向附近的45°平面附近的延性裂缝模式。然后,推导出具有质量密度的拉伸弹性模量和各向异性应变依赖性泊松比的动力缩放规律。通过局部应力状态和腹部结构的演化清楚地揭示了拉伸变形的介观性机理。粘结的石墨烯泡沫的裂缝特征及其热力学状态直接导航至介性石墨烯薄片的撕裂图案。本研究提供了理解3D石墨烯泡沫的介观性质的有效方法,因此它可能有助于微型/间谍/大型力学性能的多尺度计算和基于先进的石墨烯 - 泡沫的材料的最佳设计。]>

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