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Hybrid atomistic-coarse-grained treatment of multiscale processes in heterogeneous materials: A self-consistent-field approach

机译:异质材料中多尺度过程的混合原子粗粒度处理:一种自洽场方法

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摘要

A treatment of multiscale quasistatic processes that combines an atomistic description of microscopic heterogeneous ("near") regions of a material with a coarse-grained (quasicontinuum) description of macroscopic homogeneous ("far") regions is presented. The hybrid description yields a reduced system consisting of the original atoms of the near regions plus pseudoatoms (nodes of the coarse-graining mesh) of the far regions, which interact through an effective many-body potential energy V-eff that depends on the thermodynamic state. The approximate nature of V-eff gives rise to "ghost forces," which are reflected in spurious heterogeneities close to interfaces between near and far regions. The impact of ghost forces, which afflict all previous hybrid schemes, is greatly diminished by a self-consistent-field hybrid atomistic-coarse-grained (SCF-HACG) methodology. Tests of the SCF-HACG technique on a fully three-dimensional prototypal model [Lennard-Jones (12,6) crystal] yield thermomechanical properties (e.g., local stress) in good agreement with "exact" properties computed in the fully atomistic limit. The SCF-HACG method is also successfully used to characterize the grain boundary in a Lennard-Jones bicrystal.
机译:提出了一种多尺度准静态过程的处理方法,该方法将材料的微观异质(“近”)区域的原子描述与宏观均质(“远”)区域的粗粒度(准连续)描述相结合。混合描述产生了一个简化的系统,该系统由附近区域的原始原子与远端区域的伪原子(粗粒度网格的节点)组成,该伪原子通过有效的多体势能V-eff相互作用,该势能取决于热力学州。 V-eff的近似性质会引起“重影力”,这反映在近端和远端区域之间的界面附近的杂散异质性中。通过自洽场混合原子-粗粒度(SCF-HACG)方法,大大减轻了困扰所有以前的混合方案的幻影力的影响。在完整的三维原型模型[Lennard-Jones(12,6)晶体]上进行的SCF-HACG技术测试得出的热机械性能(例如局部应力)与在完全原子极限内计算出的“精确”性能完全吻合。 SCF-HACG方法也已成功用于表征Lennard-Jones双晶中的晶界。

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