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Multiscale Modeling of Grain-Boundary Fracture: Cohesive Zone Models Parameterized From Atomistic Simulations

机译:晶粒边界断裂的多尺度建模:从原子模拟参数化的内聚区模型

摘要

A multiscale modeling strategy is developed to study grain boundary fracture in polycrystalline aluminum. Atomistic simulation is used to model fundamental nanoscale deformation and fracture mechanisms and to develop a constitutive relationship for separation along a grain boundary interface. The nanoscale constitutive relationship is then parameterized within a cohesive zone model to represent variations in grain boundary properties. These variations arise from the presence of vacancies, intersticies, and other defects in addition to deviations in grain boundary angle from the baseline configuration considered in the molecular dynamics simulation. The parameterized cohesive zone models are then used to model grain boundaries within finite element analyses of aluminum polycrystals.
机译:开发了一种多尺度建模策略来研究多晶铝中的晶界断裂。原子模拟用于对基本的纳米级变形和断裂机理进行建模,并建立沿晶界界面分离的本构关系。然后在粘性区域模型中参数化纳米尺度的本构关系,以表示晶界特性的变化。这些变化是由于存在空位,空隙和其他缺陷,以及晶界角与分子动力学模拟中考虑的基线构型存在偏差所致。然后,使用参数化的粘聚区模型对铝多晶的有限元分析内的晶界进行建模。

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