Coarse-grained atomistic modeling of dislocations and generalized crystal plasticity

Q3 Engineering
A. Selimov, K. Chu, D. McDowell
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引用次数: 2

Abstract

Recent developments in generalized continuum modeling methods ranging from coarse-grained atomistics to micromorphic theory offer potential to make more intimate physical contact with dislocation field problems framed at length scales on the order of microns. We explore a range of discrete dynamical and continuum mechanics approaches to crystal plasticity that are relevant to modeling behavior of populations of dislocations. Predictive atomistic and coarse-grained atomistic models are limited in terms of length and time scales that can be accessed; examples of the latter are discussed in terms of interactions of multiple dislocations in heterogeneous systems. Generalized continuum models alleviate restrictions to a significant extent in modeling larger scales of dislocation configurations and reactions, and are useful to consider effects of dislocation configuration on strength at characteristic length scales of sub-micron and above; these models require a combination of bottomup models and top-down experimental information to inform parameters and model form. The concurrent atomistic-continuum (CAC) method is extended to model complex multicomponent alloy systems using an average atom approach. Examples of CAC are presented, along with potential to assist in informing parameters of a recently developed micropolar crystal plasticity model based on a set of sub-micron dislocation field problems. Prospects for further developments are discussed.
位错的粗粒度原子模型和广义晶体塑性
广义连续体建模方法的最新发展,从粗粒度原子学到微形态理论,为在微米量级的长度尺度上与位错场问题进行更密切的物理接触提供了潜力。我们探索了一系列离散动力学和连续力学方法来研究晶体塑性,这些方法与位错种群的建模行为有关。预测原子模型和粗粒度原子模型在可访问的长度和时间尺度方面受到限制;后者的例子讨论了在多相系统中多重位错的相互作用。广义连续统模型在模拟更大尺度的位错构型和反应时明显减轻了限制,有助于考虑位错构型对亚微米及以上特征长度尺度强度的影响;这些模型需要结合自底向上的模型和自顶向下的实验信息来告知参数和模型形式。将并发原子连续统(CAC)方法推广到用平均原子方法模拟复杂多组分合金体系。给出了CAC的例子,以及帮助提供基于一组亚微米位错场问题的最近开发的微极性晶体塑性模型参数的潜力。讨论了进一步发展的前景。
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来源期刊
Journal of Micromechanics and Molecular Physics
Journal of Micromechanics and Molecular Physics Materials Science-Polymers and Plastics
CiteScore
3.30
自引率
0.00%
发文量
27
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