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Multiscale modeling of dislocations: combining peridynamics with gradient elasticity

机译:位错的多尺度建模:将近期动力学与梯度弹性相结合

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摘要

Abstract Modeling dislocations is an inherently multiscale problem as one needs to simultaneously describe the high stress fields near the dislocation cores, which depend on atomistic length scales, and a surface boundary value problem which depends on boundary conditions on the sample scale. We present a novel approach which is based on a peridynamic dislocation model to deal with the surface boundary value problem. In this model, the singularity of the stress field at the dislocation core is regularized owing to the non-local nature of peridynamics. The effective core radius is defined by the peridynamic horizon which, for reasons of computational cost, must be chosen much larger than the lattice constant. This implies that dislocation stresses in the near-core region are seriously underestimated. By exploiting relationships between peridynamics and Mindlin-type gradient elasticity, we then show that gradient elasticity can be used to construct short-range corrections to the peridynamic stress field that yield a correct description of dislocation stresses from the atomic to the sample scale.
机译:摘要 位错建模本质上是一个多尺度问题,因为需要同时描述位错核心附近的高应力场(取决于原子长度尺度)和表面边界值问题(取决于样品尺度上的边界条件)。我们提出了一种基于近动态位错模型的新方法来处理表面边界值问题。在该模型中,由于近邻动力学的非局域性,位错核心处应力场的奇异性被正则化。有效核心半径由近动力视界定义,出于计算成本的原因,必须选择比晶格常数大得多的视界。这意味着近核心区域的位错应力被严重低估了。通过利用近期动力学和Mindlin型梯度弹性之间的关系,我们证明了梯度弹性可用于构建对近期动力应力场的短程校正,从而正确描述从原子到样品尺度的位错应力。

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  • 来源
    《materials theory》 |2024年第1期|共页
  • 作者

  • 作者单位

    Department of Materials Science, WW8-Materials Simulation, Friedrich-Alexander Universität Erlangen-Nürnberg;

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  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类
  • 关键词

    Dislocations; Peridynamics; Gradient elasticity;

    机译:脱臼;近期动力学;梯度弹性;

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